TRS-80 Model 4 Disk System Owners Manual

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TRS-80 Model 4 Disk System Owners Manual

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TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.2.2.2

Graphics CRT. The graphics screen is not supported by the

system ROM; therefore, all graphics screen functions must go directly

to the hardware. The graphics screen size is 720 by 300.

To simplify modification,

all routines

hardware

should be arranged in a modular

constants should be given symbolic names.

for more information.

that access

the graphics

fashion.

Hardware-specific

Refer to subsection 3.5

Texas Instruments will endeavor to keep future graphics hardware fully compatible with the current hardware.

4.2.2.3

Disk Subsystem.

The disk subsystem is fully supported

in

the system ROM,

with the exception

of the ability

to format

diskettes.

For normal operations, direct access to any of the disk

hardware

should not be necessary.

Upon request, Texas Instruments

Will supply a format routine to qualified software vendors.

4.2.2.4

Keyboard System.

The keyboard

the system ROM.

Direct access to

necessary for normal operations.

system is fully supported

in

the keyboard interface is not

4.2.2.5

Interrupt Controller.

The interrupt controller

system is

used by the system ROM, but it is not supported in a fashion usable

by software writers.

In future products,

Texas Instruments will

attempt

to keep the same interrupt

levels,

usage, and hardware

addresses for accessing the device.

However, the constants

used

to

access this hardware should be symbolic to facilitate modification.

4.2.2.6

System Timers and Speaker.

The system'

that allow other software

to intercept

the

interrupts.

The extra timer is reserved for use

software products.

ROMs contain vectors 25-ms system timer by Texas Instruments

The

speaker

(or bell) is well-supported by the system ROM.

access is not necessary.

Direct

4.2.2.7 Paraliel Printer

fully

supported

in the

for normal operation.

Port. system

The parallel

ROM.

Direct

printer port system is access is not necessary

4.2.2.8 Serial Communications. is not directly supported by compatibility, Texas Instruments
hardware.

The serial

communications

hardware

the system ROM. To ensure future

does not intend to change this

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.3 SYSTEM ROM INTERRUPT VECTOR USAGE

The system ROM uses interrupt vector locations in the first 1K bytes

of memory.

These vector locations are used for hardware

interrupts,

as interfaces to the ROM functions, and other uses as given in Table

4-1. The vectors marked with an asterisk are actually used by the

ROM. The other vector locations cause a "wild" interrupt if vectored

to, and the usual display is:

"xe SYSTEM ERROR ** - 1042"

To patch in replacement routines for those in the ROM, any of these

vectors can be changed by the disk operating system (DOS) or "by

applications software.

Table 4-1 gives vector usage in terms of

"interrupt type," which is the number used in an INT instruction. To

calculate the absolute address of the vector, multiply the interrupt

type by four.

For example,

the keyboard print screen interrupt

vector (type SEH) would be a double word at location 0:0176H
(SE x 4 = 178H).

NOTE
The symbol "H" denotes a hexadecimal value.
+

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

Vector

Table 4-1 System

Descri

ton

Interrupt

Vector Usage.

a
Re

Ly

the,

e

=

oc O1 O2* 03
04 O5S-1F 20-3F 40 41 42 43x 44 4s 46% 47% 48x 49% 4At 4x 4c 4D* 4Ex 4Fx SO* Six §2* S3* S4* S55-S6 S57 * 58x 59* SA*
SB* scx SD SE* SF

Divide-by-zero trap Single-step trap Non-maskable interrupt Break (single-byte)
software interrupt Overflow trap (Reserved by Intel) (Reserved for MS-DOS) 8259 interrupt 0 8259 interrupt 1 6259 interrupt 2 @259 interrupt 3 (Timer 1) 8259 interrupt 4 8259 interrupt 5 6259 interrupt 6 (Disk controller) 68259 interrupt 7 (Keyboard VUART) Speaker DSR interface CRT OSR interface Keyboard DSR interface Parallel port DSR interface (Reserved for future use) Disk DSR interface Time-of-day clock DSR interface System configuration call Fatal software error trap Restart timing event Cancel timing event SVC interface subroutine Activate task subroutine (Reserved for future use) CRT mapping vector System timing, 25 ms (time slicing) Common interrupt exit vector (ROM} System timing, 100 ms
(timing serv.) Keyboard mapping vector Keyboard program pause key vector Keyboard program break key vector Keyboard print screen vector Keyboard queueing vector

IAPX 88 Book ! IAPX 88 Book ! IAPX 88 Book !

IAPX 886 Book ! IAPX 88 Book ! IAPX 88 Book ! MS-DOS Operating System 6 Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Component Data Catalog ! Section 3 !! Section 3 !! Section 3 !! Section 3 !!
x* Section 3 !! Section 3 !! Section 3 !1?
ek ke kk kk kk tk Section 3 !! Section 3 !! Section 3 !!

Section Section Section Section Section Section

3 !! 3 ![! 3 !! 3 !! 3 !! 3 !!

Notes: * Vector actually used by ROM.
kx Texas Instruments use only - not to be changed. @ Texas Instruments Incorporated publication ! Intel Incorporated publication
'! This manual

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

Table 4-1 System Interrupt Vector Usage (Concluded)

Vector

Description

Reference

60%
61% 62* 63% 64x 6S%* 66%
67%
68-9F AG-DF
EOQ-£3

System ROM DS pointer

(F400:A00C0) Factory ROM

OS size in bytes ODS pointer

(F400:0000)
Option ROM
(F400:2000)

ODS size in bytes
DS pointer
DS size in bytes

Option RON

DS pointer

{(F400:4000) DS size in bytes

Option ROM

DS pointer

(F400:6000) Option ROM

ODS size in bytes DS pointer

(F400:6000) DS size in bytes Memory size in paragraphs

Outstanding interrupt count

Installed drive types

Extra system configuration

(word 1)

Extra system configuration

(word 2)

Reserved for Texas [nstruments

User interrupt vectors

Reserved for CP/M [tm]

(180H)
(182H) (184H) (186H) (188H)
(18AH)
(18CH) (18£H) (190H) (192H) (194H) (196H) (198H) (word) (L9AH) (byte) (1SBH) (byte)

Section
Section Section Section Section
Section
Section Section Section
Section
Section Section
Section Section Section

3 !!
3 !!
3 !! 3 !! 3 !!
3 !!
3 !! 3 !! 3 !!
3 !!
3 !! 3 !!
3 !! 3 !! 3 !!

(iL9CH)

Section 3 !!

(19EFH)

Section 3 !!

CP/M 86 Programmer's Guide @

E4-FF

«
Reserved for Texas Instruments

Notes:
tk Vector actually xx Texas Instruments
e Texas Instruments : Intel Incoporated an: This manual

used by ROM. use only - not to be changed. Incorporated publication publication

4.3.1 Hardware Interrupt Service Routines

All standard interrupt service routines (ISR) have limited internal

stacks.

They provide four levels (8 bytes),

which

is the amount

required by any application program or subroutine that runs with

interrupts enabled. An [SR needs 8 bytes of the user'ts stack: 2

bytes

to push

the user's

code

segment

(CS), 2 bytes

for the

instruction pointer (IP), 2 bytes for flags, and 2 bytes to push the

data segment (DS). The ISR saves the user's stack segment and stack

pointer in the RAM data area of the system ROM.

The ISR then changes

the stack segment and stack pointer

so that

they point

to the

internal

stack of the interrupt routine.

When the ISR is complete,

it executes a long jump to the common interrupt exit vector.

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DEVICE SERVICE ROUTINES

4.3.2 Common Interrupt Exit Vector

All ISRs (in the ROM and in Texas Instruments applications programs)

use a common

interrupt

exit vector.

The [SR executes a long jump

(LONG JMP) to the routine pointed out by the common

interrupt

exit

vector.

The common interrupt exit routine restores the stack and

commonly used registers, decrements the outstanding interrupt counter

(INTCTR), sends the end-of-interrupt (EOI) command to the interrupt

controller,

and returns to the interrupted code with a return-from-

interrupt instruction (IRET).

A real-time operating system (OS),

communication

programs,

uses

the

outstanding interrupts.

Be sure to

creating an ISR.

such as the OS kernel of TY INTCTR to keep track of the
include the appropriate code when

A sample interrupt service routine,

with installation

and removal

instructions, is included in Appendix G.

The common interrupt exit routine is contained in ROM, but an OS can

patch it so that all interrupt service routines exit through the

operating system.

Because the interrupt structure is complex (due to

interaction between the shared interrupts and the requirementf,or a

common exit point), the potential user should read the following

paragraphs, carefully studying the examples given.

4.3.3 Timer Interrupts

:

The system timer ticks every 2S ms.

The ISR for this timer is

located in the ROM, and it processes events such as disk motor time-

outs and date/time-keeping.

Software interrupts are performed at two

points during this interrupt service routine, allowing access to the

timing services.

One interrupt occurs every count (every 25 ms), and

the other occurs every four counts (100-ms intervals).

Usually,

these interrupt vectors point to an IRET instruction in the ROM. The

user can patch one or both of the vectors to point to his own

routines.

These routines are free to use the AX, 8X, DI, and eS

registers,

but they must preserve any other registers used.

The

stack used is the internal

stack of the timer

interrupt

service

routine

and it is limited in depth.

If the user does not re-enable

interrupts (the INT instruction disabled them), there are 8 levels

(16 bytes) of stack available.

If the interrupts are re-enabled, the

user has only four levels (8 bytes) available.

If more stack size is

required, the user should switch to an internal stack of the required size (allotting 8 bytes for higher priority interrupts).

rt is important

to remember

that

the routines installed in this

manner are executing at the interrupt level.

Interrupts must not be

disabled

for any significant iength of time, because any time spent

in these routines directly affects system efficiency.

The user must

also understand how some other mechanism (such as a timing event in

the handler routine of the OS) can patch the timing vectors and

install

its own routines.

Instead of using the IRET instruction to

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

end the routine, make a long jump to the original (which was saved when the routine was installed.)

vector

address

4.4 ROM STRUCTURE
The following paragraphs describe sequences for optional ROMs.

the use,

format,

and calling

4.4.1 ROM Usage

Optional ROMs provide an interface between the hardware and the

system software.

With this interface installed, modification of the

hardware requires changing only the ROM software,

not ali of the

applications programs.

The system system ROM. board) for which can be

defines

locations

for six ROMs.

One of these is the

Texas Instruments has reserved another

(on the main

future use.

The four remaining are the optional ROMs,

used by any of the available operating systems.

Table 4-2 shows the ROM addresses and suggestions for their use.

Table 4-2

ROM Addresses

and Suggested

Uses $

Absolute Address CS: Offset

F4000H

F400: 00CGGH

FG6OOOH

F400: 200C0H

FacO00H FAOOOH FCOOOH

F400: 4000H F400:6000H F400: 8000H

FEOOOH

F400: A000H

Use
Miscellaneous I/O option
Local area network
Mass storage Open System ROM
expansion System ROM

a Comments
Reserved for Texas Instruments
Reserved for Texas Instruments Texas Instruments Winchester card Open
Reserved for Texas Instruments Reserved for Texas Instruments

4.4.2 ROM Format The ROM format must be known to;
* JFdentify the ROM * Use a standard calling sequence * Use the diagnostics

_ TECHNICAL REFERERCE

DEVICE SERVICE ROUTINES

=.
ROMs can be one of the following sizes:

* 256 bytes

P

Lh
x S12 bytes

* 1024 bytes

a

* 26048 bytes

* 40836 bytes

* 8192 bytes

The ROM size, word value is convention.

in binary, stored low

is stored in the first word in the ROM. The byte first, following the INTEL Corporation

The second word in the option ROM is the power-up initialization

address.

The system ROM uses a NEAR call to this address during

the

power-up process.

The user must ensure that the initialization

address is calculated as an offset from the segment address F40oo.

The next location

ROM.

The first

(lL byte).

This

displayed.

in the ROM stores a text string identifying the

entry in this string is the length of the string

information determines how

much

material

is

The rest of the string consists of a five~character version number, a

space

character,

@ six-character

name,

and any descriptive text

(copyright, for example) that the vendor requires'.

The option ROM code and fixed data (in a format vendor) follows the text string.

determined

by the

The last word in the ROM stores the cyclic redundancy check (CRC-16)

remainder from all the previous bytes in the ROM. Both the power-up

test and the advanced diagnostics test read this word to see if the

ROM is working properly. The CRC-16 routine, available in the system

ROM, calculates this remainder.

When the CRC remainder is correctly

Placed, running the CRC-16 routine through the entire length of the

ROM (including the CRC) results in a zero remainder.

The CRC-16

routine availiable in the system ROM calculates the remainder.

4.4.3 Option ROM Interrupt Vector Usage

The system ROM uses interrupt vector Locations in the first 1K bytes of RAM for hardware interrupts, interface to the ROM functions, anda other ISRs. See paragraph 4.3.1 for more information.

Interrupt

vectors access

the option ROM entry points.

The option

software can use the vectors above 80H (vector address 200H).

TECHNICAL REFERENCE
=

# * >.

= ra

wy .

NOTE

DEVICE SERVICE ROUTINES

Conflicting vector assignments can loss or data errors. Be extremely making these assignments.

cause careful

data when

4.4.4 RAM Usage by Option ROM

Each ROM has a separate RAM. data area' assigned to LiET:

These

data

areas

float; therefore, the ROM does not require a dedicated area in

RAM a
area.

Copying the data area and updating The ROM accesses these data areas

the pointer moves using the pointers

the data and sizeg

in the interrupt vector area, so. that moving the data area does not

affect the ROM. The ROM initializes the pointers and data areas at

boot-up time, so the system ROM data area pointer is the only one

used.

All option ROMs are addressed at absolute segqment addresses F400H,

with an offset from 0000 to AOOGH. The ROM code is linked so that

its code segment is F400H. This code segment was chosen so -that

option ROMs can be addressed with the same code segment as the system

ROM.

This enables

the option ROM to access the ROM powerup entry

routines as NEAR instead of FAR. The first location of the system

ROM, described in segment:offset notation, is F400:A000.

There is another advantage to linking the ROMs. this way. The

interrupt vector area at location 0000:0000 is now also accessable as

F400:co00.

This simplifies slightly the code sequence used to assign

a local data area.

4.4.5 Initializing the Option ROM

The power-up sequence executed by the main ROM tests each option ROM

address in sequence.

Address OF400:0G00H is tested first and address

OF400:8000H (the main board option ROM) is tested iast. When a ROM

is found, the diagnostics performs a CRC-16 calculation.

The system

displays an error message if the ROM is bad. If the ROM is good, the

system initializes the option ROM. The initialization code saves the

BX, DX. SI, SP, cS, SS, and DS registers so that using a NEAR return

instruction returns control to the system ROM.

4.5

BOOTING UP THE SYSTEM

:

Most

system software

is contained

in some mass-storage

system

(diskette, KMinchester disk, or local network server).

The user must

be able to find and load the system software from these devices.

The

Texas Instruments Professional Computer loads a single sector of

program information from a known point on the specified device.

The

4-i0

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

* f

system then calls the code that was loaded, which "bootstraps" the

rest of the programs.

-

The location

loaded at power-up

is the lowest

available.

For diskettes

and Winchester

disks,

cylinder (track) 0, surface (side) 0, and sector 1.

start at i.)

logical sector this location is (Sector numbers

4.5.1 Boot Sequence

The options installed in the system determine the boot sequence.

The

sequence starts at the highest-priority option address {OF 400:00060H),

proceeds to the lowest (GF400:8000H), then boots the diskette system.

The boot sequence is:

1. Local Area Network (LAN)

2. Winchester disk subsystem

3. Diskette drive A

4. Diskette drive 8

S. Diskette drive c

6. Diskette drive D

;

4

Pressing

the ESC key during the power-up sequence (immediately after

the "white flash" appears across the top of the screen)

changes'

the

boot priority.

Fach time the ESC key is pressed, the system lowers

the boot sequence to the next available option.

For example, if the

system contains either an LAN or a Winchester disk, pressing the ESC

key once lowers the boot sequence to the first diskette.

If the

system

contains

both

an LAN and a Winchester, pressing the ESC key

once moves from the LAN down to the Winchester,

while pressing

the

ESC key twice moves to the first diskette.

4.5.2 Loading and Calling the Boot Code

The

booting

device

loads the boot code at address OOO0C:COGOH.

The

stack operates below this address.

After the

code

is loaded,

the

System checks address GOOO:CIFCH for the bytes 74H and 69H {ti).

The

presence

of these bytes indicates a Texas Instruments system disk.

If these bytes are absent, the system

generates

an error

message.

(Texas

Instruments

disks

used

only for data storage contain the

characters ""NO".) The system then runs the CRC-16 test over all 512

bytes of the lowest logical sector loaded at power-up.

If the cCRC-16

remainder

is incorrect,

the system generates an error message.

2...

the system passes both these tests, it calls the boot sector code at

address OO00O:COOOH (FAR).

The logical drive number {G, 1, 2, 3) from

FECHNICAL REFERENCE

sn

DEVICE SERVICE ROUTINES

which the system boots is placed in register BL.

Before loading the operating

required initializations such as

(single or double sided,40 or

Winchester drive.

(The DSR must

for further loading.)

system, the boot code performs other setting up the type of floppy disk 60 track), or setting up the type of be able to recognize the disk format

The boot code then loads any system files needed by the OS and jumps

to the OS code.

If the OS requires RAM where the system ROMs are

using it, the RAM data areas used by the ROM can be _ moved,

The

pointers

to the RAM segments must be modified accordingly.

If a ROM

is not using a RAM data area, its pointer is 60000. This pointer must

remain zero even if the area is moved.

Table 4-3 gives the addresses

of these pointers.

Table 4-3 Pointer addresses and Descriptions

Address Pointer Description ROM Address

0600:0180 0000:0182

System ROM data segment pointer System ROM data length in bytes

0000:0184 0C00: 0186

Option ROM data segment pointer Option ROM data length in bytes

60000:0188 000CG:C18A

Option ROM data segment pointer Option ROM data length in bytes

0c000:018C O0Cc00:G1L8E

Option ROM data segment pointer Gption ROM data length in bytes

0000:0190 606000:060192

COption ROM data segment pointer Option ROM data length in bytes

60000:6194 0000:6196

Option ROM data segment pointer Option ROM data length in bytes

F400:A000
F400:0000 :
F400:2000
F400: 4000
F406:6000
F400:8000

If any errors occur during the loading and initializing of the OS,

the boot

code returns to the cailer.

The registers 8X, ES, CS, and

the stack must be preserved.

The register DBS must be preserved

unless

the ROM data areas are moved.

rf the data areas are moved,

adjust the DS register by the amount, of difference

between

the

original position and the new position.

A DSR error code returns to

the caller displayed as & system error message.

This code is

presented in register AH.

Appendix H gives boot sector.

a sample source program that could be used in the

4-12

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.5.3 Booting From an Option Device

When an option device is to be booted up, it must be the last one

calied

in the power-up sequence.

Otherwise, other options must be

called and initialized during the boot sequence. Appendix G contains

@ sample assembly code showing the boot sequence.

If more than one bootable option is present in the system,

each one

must

have

the DX register set to OFFFFH.

The bootable option then

calls all lower priority ROMs in the system.

Any ROM called in

this

manner

performs

all

required

initialization

except

for booting.

Because the system ROM sets the DX register to OOOOH

when

it calis

the option ROMsS, an option device will boot if called by the system

ROM, but not if called by another ROM.

If booting from an option device

fails,

the ROM displays

the

appropriate

error messages and returns to the caller with registers

BX, DX, Si, and DS intact.

The

system

ROM

then

calls

the other

options.

rf none

of the options

boot, the system ROM boots the

Floppy Disk system.

This procedure can cause multiple

initializations

of the

However,

no

harm

results.

Entering

the warm boot

(CTRL/ALT/DEL)

from

the

keyboard

also

causes

initializations.

options. sequence multiple

4.6 SYSTEM CONFIGURATION FUNCTION CALLS

<

The following paragraphs

describe

the function calls for the two

types of system configuration information, which are:

x Function calis that return the information (System Configuration Function)

in a register

* Function

calls

that

return the address of' the information

(Extra System Configuration Function)

The first type, System Configuration Function, returns

most

of

the

information

required

for

application programs.

Extra System

Configuration Function, the second type, is intended for use at the

system level.

This method contains additional information usable for

changing the configuration of devices set by software.

4.6.1 System Configuration Function

This function is used to determine the installation status of certain

system options.

Tt is invoked by executing an INT 4FH instruction.

Upon return,

register

BX contains

the size of contiguous

RAM

(starting at OGOOGH) in paragraphs (16-byte blocks).

A 128K-byte

system, for example, would return 2000H in BX.

4-13

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TECHNICAL

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Register

AX contains

the system

the installation status of various

word are defined in Table 4-4.

configuration word, which system options. The bits

reflects of the

Table 4-4 System Configuration Word-Bit Definition

Bit

Definition

Ox

Diskette drive 0 (internal) installed

1

Diskette drive 1 (internal) installed

2

Diskette drive 2 (external) installed

3

Diskette drive 3 (external) installed

4

E1-E2 jumper (0 indicates Drive A is double-sided)

s

E3-E4 jumper (0 indicates Drive A has 80 tracks)

6

ES-E6 jumper (0 indicates a SO-Hz system)

7

Winchester disk controller installed

8

Serial port 1 installed

i)

Serial port 2 installed

10

Serial port 3 installed

11

Serial port 4 installed

12

Graphics RAM bank A installed

13

Graphics RAM bank B installed

14

Graphics RAM bank C installed

is

Reserved

* Bit co is the least-significant bit. Unless otherwise stated, a
statement is true when its corresponding bit is al. `
i.

4.6.2 Extra System Configuration Function

This function determines the installation status of system options

that are not covered in the standard system configuration call.

Whereas

the standard

system configuration

call returns a word

containing the information necessary for most applications, the extra

system

configuration

function

is used primariiy for systems

programming purposes.

The extra system configuration function is invoked by placing a OSH

in register AH and executing an INTerrupt 46H.

Upon return, register

AL contains the drive-type byte (AH is undefined).

BX contains extra

system

configuration

word

is;

and CX contains

extra system

configuration word 2. The bits of extra system configuration word 1

are defined in Table 4-5.

.

TECHNICAL REFERENCE

:

DEVICE SERVICE ROUTINES

Table 4-5
Bit

Extra System
Definition

Configuration

Word

1 (BX)

Ox

8087 numeric coprocessor is installed

1

\

2

|

3

4

>

Reserved

3

6

7

/

8

3060/1200 baud modem in port 1

8

300/1200 baud modem in port 2

10

300/1200 baud modem in port 3

11

300/1200 baud modem in port 4

42

300 baud modem in port 1

13

300 baud modem in port 2

14

300 baud modem in port 3

15

300 baud modem in port 4

Bit © stated, i.

is the least-significant

bit.

Uniess

a statement is true when its corresponding

:

otherwise bit is a

Word 2 of the Extra System Configuration function call is contained

in ¢xX.

This word is currently undefined, and is being

reserved

for

later expansion.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

The drive-~type byte defines

the

types of the installed diskette

drives. This information, combined with the "installed drive" bits

in

the

standard

system

configuration word, yields complete

information about the drives in the system. At power-up, the drive A

definition jumpers (Ei - E2 and E3 - E4) are read.

The information

is stored in memory as a byte of four identical, 2-bit fields. This

byte is read

during

the extra

configuration

function

call and

returned

in register AL.

The drive byte (in AL) is the 2-bit >

configuration code for all four of the diskette

drives,

which is

shown in Figure 4-1.

Each 2-bit field is defined as:

MSB* LSB

Definition

*MSB

0

0 = Single-sided

0

1

--

Double-sided

1

0 = Single-sided

1

1

=

Double-sided

= Most significant bit; LSB = Least significant bit. .

7

40 track 40 track 80 track 80 track
2a23216-Z2

Figure 4-1 Register AL Drive Byte

The operating

system uses this drive byte to format, copy, and use

diskette files.

It is possible to mix drive types in one system (for

example, one single-sided and one double-sided drive) by setting

the

drive-type byte with the pertinent

information; but, this is not

recommended.

Mixed-drive

type systems

are

confusing.

Users

frequently insert the wrong diskettes, thereby losing data.

4.6.3 Get Pointer to System Configuration

This

function

is invoked by placing

a OSH in register AH and

executing an interrupt 48H.

On return, ES contains the segment,

and

BX contains

the offset

of

the standard system configuration word

(hereafter, the notation for this is ES:BX).

This function

is used

by system

software

that has a need

to change the configuration

information.

Although an application

program

can

access

the

information in this manner, the configuration must not be changed.

4-16

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DEVICE SERVICE ROUTINES

4.6.4 Get Pointer to Extra System Configuration

This

function

is invoked

by placing a OAH

in register

executing an INTerrupt 48H. On return, ES:BX points to the

system configuration information, formatted as follows:

AH and extra

ES: {BX-3]J=(word)
ES: [BX+Oj=(byte) ES: {BX+1i}J=(word) ES:({8X+3jJ=(word)

Size of memory in i6-byte blocks Drive-type byte Extra system configuration word 1
Extra system configuration word 2

This function is used by system software

the configuration information.

Although an

access

the information in this manner, the

changed.

that has a need to change application program can configuration must not be

4.7 GENERAL-PURPOSE ROM FUNCTIONS

The following paragraphs

describe

some

summarize

the ROM interface interrupts,

the ROM.

general-purpose

functions,

and explain how the RAM uses

4.7.1 Delay

,

This function causes a delay, in milliseconds, of the value Placed in

register CX.

To invoke the function, piace the délay value

in cx,

OSH in AH, and execute an INT 48H.

The delay is approximate, but can

be used wherever an inexact

software delay is acceptable.

Ail

registers except CX are preserved.

4.7.2

CRC Calculation

This function calculates the cyclic redundancy check (CRC-16) value

for a specified block of memory.

It is invoked by placing the

address of the memory block in ES:8X, the size of the block

in BP,

and

the value

O6H in AH, then executing an INT 48H.

On return, DX

contains the CRC value; if DX=0000, the Z-flag is set.

For memory

blocks

that

follow the convention of the CRC being the last word in

the block, this routine allows easy CRC checking.

First, the CRC of

the memory block is calculated, with the size of the block set to the

actual size minus two. The CRC word is then written to the last word

of the block.

Subsequently, the CRC of this block can be checked by

calling this function with the actual size of the memory block

(including the previously calculated CRC). By definition, the cRC

result of this block is zero (if the CRC matches the data) and the Z-

Flag is set; otherwise, the CRC fails and the Z-flag is reset.

All

registers are used except DI, SI, and DS. ES remains unchanged.

4-17

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.7.3 Print ROM Message

This function displays a ROM CS-reiative message.

placing the offset of the zero-terminated message in

and executing an INT 48H. This function is used by

because all the ROMs share a&@ common CS.

It is not a

routine.

It is invoked by SI, O7H in AH, the option ROMs,
general-purpose

4.7.4 Display System Error Code

This function format:

is used

to display

a system error in the standard

kk System Errorkk - XxXxx

It is invoked by placing the error displayed message above) in BX, executing an INT 48H.

code (the xxxx value ine the placing the value OSH in AH, and

4.8 SPEAKER DSR

The following paragraphs describe the speaker DSR and the functions

it provides

to the system or application programs that use it. The

functions are:

x Sound the Speaker

* Get Speaker Status

TM

* Set Speaker Frequency

* Speaker ON

* Speaker OFF

The speaker DSR functions are located

in the system ROM and are

accessed

through the software

interrupt mechanism

of the 8086

microprocessor.

The desired function is chosen by placing an opcode

in register

AH and executing an INT 48H instruction.

All registers

are preserved except AX.

4.8.1 Sound the Speaker ~- AH = 0

This function turns the speaker on (at the current frequency) for the

length of time specified in register AL. Time is measured

in 25-ms

increments.

For example, a value of 40 in AL causes the speaker to

sound for 1 second.

Timing is handied in the ROM with

the resuit

that

the request

turns on the speaker,

starts

the timer, and

immediately returns to the user.

The sound continues until timed out

by the ROM code.

Because this function

call

occurs

asynchronously

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

with the 25-ms system timer, the time can be "off" by as much as 25 ms. For example, specifying a single 2S-ms unit of time can cause. the speaker to sound for a period of 0 to 25 ms. If there is need to synchronize with the sound or simply to know when sound is turned off, use the Get Speaker Status (AH=1) function.

4.8.2 Get Speaker Status - AH = ji

This function returns the status of the speaker in the Z-flag.

If

the speaker is currently enabled (sound), the Z-flag is set at 0. If

the speaker is currently disabled (no sound), the Z-flag is set at i.

This function can be used to find out when a sound requested with the

Sound the Speaker (AH=0) function has been completed.

4.8.3 Set Speaker Frequency - AH = 2

This

function

sets

the frequency

of the speaker.

Usually this

function is called only when the speaker is disabled.

The value

in

CX sets

the frequency

of the timer that drives the speaker.

The

input frequency of the timer is 1.25 MHz, and the value in CX becomes

a divider for this frequency.

For example, the system beep routine

(800 Hz) uses a value of 1563 (1 250 000 Hz / 1563 = 800 Hz).

4.8.4 Speaker ON - AH = 3

This function enables the speaker (turns on remains on until it is turned off by either
(4) the Speaker OFF (AH=4) function or

the sound).
TM,

The speaker

(2) by the ROM timing routine, which results from either the Speaker (AH=0) function or a normal system beep.

the Sound

4.8.3 Speaker OFF - AH = 4 This function performs the reverse of the Speaker ON (AH=3) function by disabling the speaker (turning off the sound).

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.9 TIME-OF-DAY CLOCK DSR

The following paragraphs describe the time-of-day clock DSR and the

functions

it provides to the system or application programs that use

it. The functions are:

* Set the date

* Set the time

* Get the date and time

The clock DSR consists of routines to set and read the time of day

and date information kept by the timing services of the system ROM.

At power-up, the time is set to 00:00:00.00, and the date is set to

ooo0.

These can be reset by system or user programs.

Once set with

a valid time,

the clock keeps

the correct

time with a i/ficd-s

resolution.

The time is kept in 24-hour format and the date is

simply a cumulative count of days since the clock was started.

As a

matter

of convenience

(for MS-BOS),

the date is specified as the

number of days since January 1, 1980.

For example,

the date value

for September 10, i982, is 983.

The three clock functions are located in the system ROM and are

accessed through the software interrupt mechanism `of the 98088

microprocessor.

The desired function is chosen by placingan opcode

in register AH and executing an INT 4EH instruction.

Ali registers

are preserved except AX and any other registers in which information

is returned.

4.9.1

Set the Date

- AH = 6

This function sets the date to the value in the BX date is simply a count of days since the clock convention, this is the number of days since 1-1-9896. incremented when the hour rolls over from 23 to OO.

register. was started.
The count

The Sy is

4.9.2

Set the Time

- AH = 1

To set the time, the registers must be initialized as follows:

CH = Hours (00 - 23) CL = Minutes (00 - S9) DH = Seconds (00 - 59) DL = Hundredths of seconds

' (00 - 99)

It is the user's responsibility to make sure the values passed are within the ranges specified. These values are not checked for range and can be set to represent a meaningless time. The time, however,

4-20

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

eventually counts into the normal sequence.

wy

"

4.9.3

Get the Bate and Time

- AH = 2

This function returns the current date in register AX and the current time in registers CX/DX in the formats described previously.

4.10 CRT DSR

The following paragraphs describe the CRT DSR and

the functions

it

provides

to the system or application programs that use it. The

major

functions

are

(1) video

mode

control

and

(2) character

handling.

For

information

about the CRT graphics hardware, refer to paragraph

2.4.7, and to subsection 3.5.

The CRT DSR functions are

located

in

the system ROM and are accessed through the use of the 8088 software

interrupt mechanism (essentially an address-independent

subroutine

call).

A typical user of this DSR is the OS-dependent system

interface code (the BIOS), which resides on a particular OS disk. and

is loaded

into RAM during disk boot up.

The desired function is

chosen by placing an opcode in register AH.

The CRT opcodes and

functions

are

given

in Table

4-6.

Various CRT functions require

parameters to be passed in specific

registers

in addition

to AH.

After

register

AH and the parameter registers are set up, the user

can execute an INT 49H and

the specified

function

is performed.

During this interrupt, all registers are preserved except AX, CX, and

DX.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

Table 4-6 CRT DSR Opcodes and Functions

Function

(Null function)

Set cursor type

Set cursor position

Read cursor position

(Null function)

(Null function)

Scroll text block

Scroll text block

Read character and attribute at current cursor position

Write character and attribute at current cursor position

Write character only at current cursor position

(Null function)

(Null function)

(Null function)

Write ASCII teletype

{Null function)

Write block of characters at current cursor with attribute

Write block of characters only at current cursor

Set entire screen to specified attribute(s)

Clear text screen and home the cursor

Clear graphics screen

-

Set TTY status line beginning

Set attribute latch to specified attribute(s)

Read physical display begin pointer

"

Print TTY string

4-22

TECHNICAL REFERENCE

BEVICE SERVICE ROUTINES

4.10.1 Set Cursor Type - AH = O1H

This function allows an application to define the starting and ending

scan line for the cursor and its characteristics (either blinking or

no cursor).

Required input for this function is described in Figure

4-2,

CHE=

Byte1
Start scan line of cursor
Cursor type: 00 = no blink 01 = no cursor 10 = fast blink 11 = slow blink
Not used

CL =

Byte 2
?

End scan line of cursor

Bits 7 through 5 not used

(Valid values for scan line are 0 through 11 decimal.)

2225216-23

Figure 4-2 Byte Definition - Set Cursor Type

TECHNICAL REFERENCE|

DEVICE SERVICE ROUTINES

4.10.2

Set Cursor Position - AH = O2?H

NOTE

The user should be aware that screen coordinates

use the 0,0 coordinate as the upper left-hand

corner of the display.

All routines that reguire

a coordinate parameter use this convention.

The

screen should look to the user as though he were

working

with

the absolute value of fourth-

quadrant

coordinates

of

a

two-dimensional

coordinate system.

This function causes the cursor (of the current type) to be set at the specified x,y (column/row) coordinate of the display.

Required input for this function is as follows:

BDH = x

Column coordinate (Valid values are 6 through 79 decimal.)

DL = y

Row coordinate (Valid values are 0 through 24 decimal.)

4.16.3 Read Cursor Position - AH = O3H

*

This function returns the current position and type of the Output from the read cursor position routine is as follows:

cursor.

DH, DL = x, y {column/row) Location of the cursor

CH, CL = current cursor type

Refer to paragraph 4.10.1 for an explanation of the values for CH and oPbye

The "phantom" position of the cursor in column 81 creates a special

Situation in reading the cursor postion.

If a character

is written

in the last column of the screen by a TTY write, it can be read, even

though it is not visible. This position, column 81 of the last line,

becomes visible after another character is written and the screen

scrolls.

The position returns as column 0, row 25. This is invalid

input to the Set Cursor Position (AH=02H) routine.

See paragraph 4.10.18 for additional information on the cursor.

4-24

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.4

Seroll Text Block - AH = O6H and O7H

The ROM contains

only one general-purpose

scroll routine, which

handles both upward and downward scrolling.

When the destination

coordinates

are less

than the source coordinates, the scroll is up

and to the left; when the destination coordinates

are greater

than

the source coordinates, the scroll is down and to the right.

The

scrolling

functions

allow

an application Program to specify a

block of text, then move or copy that block to another

location

on

the screen.

Specifying a scroll with blanking causes the source text

to be blanked as it is moved.

During this process, the source

character is read to a temporary

register

and its location

is

blanked.

Then

the character

is rewritten

to its destination

location.

This provides for a nondestructive move in the event

that

the source

and destination

locations are the same and blanking is

specified.

This method satisfies the requirement that, in scrolling,

the data being moved

or copied

be preserved

in its destination

location.

Required input for this function is as follows:

AL it O (Blank out source text. This is a move block.)

or

AL = >6 (Don't blank source text.

This is,a copy block. )

(DH,DL) (B8H,BL)

Source begin column/row location
"ey
= Destination begin column/row location

CH

Coiumn length of block

(Valid values are i through 80 decimal.)

CL = Line length of biock (Valid values are 1 through 25 decimal.)

The source text block boundaries in (x,y) coordinates are as follows:

Upper Upper Lower Lower

left right left right

(DH, DL)
(DH + CH
(DH , DL
i& oee(nDH + CH

, BL)
+ CL)
, DL + CL)

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

The following items further describe explain the sequence of operation.

the scrolling routines and

* A sentence is considered the smallest Logical block of text.

Therefore, with this scrolling capability,

the user can

specify a block

to bea sentence.

This may (or may not)

wrap to a new line and "unwrap" as it is moved (or copied)

to its destination

(that

is, the column length parameter

would bypass line boundaries and pick up characters from the

next line).

The user should note that this is quite

effective when the line length is equal to one but might

cause unwanted block movement if the line iength is greater

than one.

* Boundary checking for the scrolling routine is done on a

character basis as the characters are being moved.

When a

scroll down is in progress,

the scroll copies the last

character in the source block to the last character position

in the destination biock.

The processing is backward

through the blocks while checking character positions for

out-of-bound characters.

This means that in the scroll-down

action, no scroll takes place if any destination position

lies beyond

the end of the screen.

Asymmetrically, when a

scroll up is in progress,

the

scroll

copies

the first

character

in the source block

to the first

character

position in the destination block.

The scroll proceeds

forward,

through the blocks,

while

checking character

positions for out-of-bound characters.

In the scrolli-up

action,

the scroll

takes place until it reaches a source

character position that lies beyond the end of the screen.

* When the user requests scrolling with blanking,

the status

of the attribute latch at entry is preserved.

The character

attributes

follow

the character

as it is moved on the

screen, and the blanked area is written with the default

attributes

(that is, high intensity for a monochrome

monitor, and white for a color monitor).

* When the user requests

scrolling without

blanking,

the

attribute latch is set to the same status as the attribute

of the last character that was scrolled (that is, the

attribute of the first character of the source block when

scrolling down, or the attribute of the last character of

the source block when scrolling up).

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.5 Read Character/Attribute at Cursor Position - AH = O8H

This function returns a character and its associated the current cursor position on the screen as follows. 4.10.15 for attribute values and a description of supported.

attribute from See paragraph the attributes

AH = Attribute value AL = Character read

NOTE

The attribute latch remains set to the that is returned.

attribute

4.10.6 Write Character/Attribute at Cursor Position - AH = OSH

This function enables the writing of a character with the given

a@ttribute at the current

cursor

position.

(The attribute

latch

remains set to the attribute specified in register BL.) The user can

specify a count and cause the character to be writtenca given number

of times starting at the cursor's current position.

This function

dees not increment the cursor automatically, and the cursor remains

at its current position while the characters are written

in

succession from that location.

If an application uses this method of

Writing characters,

it is assumed that the application also handies

the cursor positioning.

Therefore,

no

cursor

movement

is

implemented.

Control characters (CR,LF, and 30 on) are not executed

as such when using this function; their symbols are

printed

on

the

display.

For more information, refer to paragraph 4.10.45.

The required input for this function is as follows:

AL = Character to write

BL = Attribute of character(s)

CX

Number of times to write the character

4-27

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.7 Write Character at Cursor Position - AH = OAH

This function is similar to the preceding function. The difference

is that the character being written takes on the attributes remaining

in the attribute Latch from the last CRT call.

For more information,

refer to paragraph 4.10.6.

The required input for this function is as follows:

AL

Character to write

CX it Number of times to write the character

4.10.8 Write ASCII Teletype - AH = GEH

This function allows TTY output to the screen from application

programs.

Writing begins at the current cursor position, and the

cursor is advanced automatically to its next position on the' screen.

For more

information,

refer

to paragraph 4.10.18.

The screenis

scrolled automatically when needed (such as writing past the end of

the screen).

The control characters CR, LF, BS, and BEL are executed

rather than written.

NOTE i
If a status region is currently in use, the scroll starts one line before the beginning of the status region, exactly as if that line were the end of the screen.

Because the contents of the attribute latch remain

unchanged,

each

character written with this function assumes the attributes of the

previously written character.

;

The required input for this function is as foliows:

AL = Character to write

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TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.9 Write Block of Characters at Cursor With Attribute - AH=10H

This function writes a given block of data with a specified attribute

to the

screen,

starting

at

the

current

cursor

position.

This

function requires less screen I/O overhead if an application program

has a "known" block of data to be written to the screen.

"Known"

means

that

the block is of a given length,

and is in a given

contiguous area of memory. As with the Write/Character Attribute at

Cursor

Position

function,

the

cursor

is not automatically

incremented.

For more information, see paragraph 4.10.15.

The required input for this function is as follows:

AL = Attribute(s) of characters *

DX = Segment location of character block

BX = Offset location of character block

cX = Block length **

4.10.10 Write Block of Characters Only at Cursor Position - AH=11H

This function is similar to the preceding funetion, with the

difference that

the attribute

parameter

is not specified.

The

characters assume the attribute(s) remaining in the attribute latch

from the last CRT call.

TMe

The required input for this function is as follows:

AL = Don't care

.

BX = Seqment location of character block

BX = Offset location of character block

CX = Block length *«*

*

The attribute(s) specified is in effect for the entire

block and the attribute latch remains set to the attribute

specified in register AL.

k

This routine "clips" any characters that do not fit on the

screen.

Characters are written to the end of the screen, then

all other characters are lost/not written.

To prevent losing

characters, the user should place the cursor so that the

number of character positions from the cursor to the end of

the screen is greater than or equal to the block length.

4-29

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.11 Change Screen Attribute(s)}) - AH = 12H

This function specifies attribute(s)}) that affect all

of

the

characters on the display.

The attribute latch is set to the

attribute specified in register AL on exit. This routine does not

change

the position

of any characters on the screen.

Two examples

are blinking of the entire screen and reverse video of the entire

screen.

For more information, see paragraph 4.10.15.

The required input for this function is as follows:

AL = Attribute(s) to use

4.10.12 Clear Text Screen and Home the Cursor - AH = 13H
This routine clears the text screen and sends the cursor to the home position (0,0 coordinates).

NOTE

This function "erases" any data contained

status

region but leaves the status

implementation in effect.

in the region $

The required input for this function is as follows: AH = 13H (function number )
4.10.13 Clear Graphics Screen(s) - AH = 14H This function clears the graphics screen. Required input for this function is as follows:
AH = 14H (function number }

4.10.14 Set TTY Status Region Beginning - AH = 15H

This function specifies a beginning line on the screen.

The text

from this beginning line to the end of the screen is considered the

status region. This fucnction can define a status region of one or

more lines.

This region remains in effect until it is reset.

DBuring

TTY writes,

this area remains intact and everything above this line

4-30

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

scrolls ag necessary.
should: ad

In order to write to this

hy
1. Read and save the current cursor position.

area,

the user

2. Locate the cursor within the status region.

3. Use one of the write).

write

character

functions

(not

the TTy

4. Restore the cursor to its original position.

Required input for this function is as follows:

CH = GO (must aliways be zero)

cL ut Start line of status region (Valid values are 0 through 24.)

A value of zero (0) for the start

implementation.

The start line must be

cursor position, or no status region is

line resets the a line after
implemented.

status region the current

4.10.15 Set Attribute(s) - AH = 16H

i

This

function provides an alternate method with which to control the

following attribute(s).

* Intensity levels 1, 2, and 3 (blue, red, and green) * Character enable/disable

* Reverse/normal video

* Underline

* Blink

k Alternate character set

This function sets the specified attribute(s)

into the attribute

latch,

and subsequent

characters

written to the screen assume the

attribute(s).

Combining this function with a Write Character (either

block or single) at Cursor Position (AH=0AH) function

has

the

same

effect

as

the Write Character/Attribute (either block or single) at

Cursor Position (AH=09H) function.

The attribute latch remains

set

to the attribute specified in register BL.

Although more than one attribute can be used, certain combinations do

not make

sense.

For instance, if the character enable attribute is

4-31

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

set to a zero, then the character will not appear nor will any of the other attributes except for reverse video.
The required input for this function is shown in Figure 4-3.

BL = Attribute(s) to set
(BL is used to distinguish this function from the change screen attributes function).
7yetsjats}z}rfo
Intensity level 1 (biue) intensity level 2 (red) Intensity level 3 (green) Character enable (second dominant)* Reverse video (first dominant)* Underline
Blink » Alternate character set
%
* The user can specify more than one attribute. For instance, it is possible to have reverse video with an underlined, blinking, red character. The user can mix the intensity (color) bits for different intensities or colors for a given character.
22232 16-24
Figure 4-3 Byte Definition - Set Attribute(s)

4-32

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.10.16 Get Physical Display-Begin Pointer - AH = 17H

This function is used to return the physical display-begin pointer to

an application.

Logically, the display-begin pointer

is always at

0,0, but there is a physical address (offset) associated with the

beginning of the display that changes from time to time as the screen

is scrolied, cleared, or otherwise changed.

This routine returns

that

offset

address

relative

to the CRT memory area whose segment

address is DEOGH. The screen memory is a 2K-byte contiguous block of

RAM. Once the starting location of this block is known to the

application,

any character

on the screen

can be accessed.

For

example,

the last character on

the

screen

is

located

at

(DEOQOH: display-begin +2000) and the eightieth character on the

screen (top line, last character on the line)is

located

at

(DEOOH: display-begin + 60). This returns the display-begin pointer

as follows:

DX = 16-bit display-begin pointer (offset)

Example:

DX = 0 implies that the first character on the display resides in memory location DE00:0000H

DX

ISOH implies that the first character on the

display resides in memory location DE00:0150H

4.i0.i7

Print TTY String - AH = 16H

With this function,

the user can have a contiguous

string of

Characters,

of a given length,

located

in a code segment to be

printed (starting at the current cursor position) in a TTY fashion.

As with

the Write

TTY function, this routine executes the control

characters CR, LF, BS, and BEL and scrolis the screen if necessary.

Required input for this function is as follows:

BX = Address (offset) of the strings

Where: (BX) byte 0 = length of the string (BX) byte 1 = first character of the string

x The user's code segment address is obtained from the stack and therefore does not need to be passed as a parameter.

4.10.18

CRT TTY Mode Behavior

.

The following used in the "mixed" modes. especially if

is a brief description of the behavior of the CRT when TTY mode as well as its behavior when being used in The user should read this information carefully,
the user mixes non-TTY functions with TTY functions.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

Internally,

the CRT DSR implements

a "phantom" column 81 on each

line, which is actually column 1 of the following line.

This

*phantom"TM column occurs when a TTY write puts a character in the

eightieth column of the current line.

If a carriage

return

(<CR>)

command is issued at this point, the cursor moves from the column 81

of the current line back to column 1 of the current

line.

However,

if the cursor is in column 81, reading the cursor position returns

{current Line + 1, column 0), instead of (current line,

column

81).

The user must be aware of this before attempting to restore a cursor

position which logicaily came from column 81, because the Set Cursor

Position function has no concept of a column 81. This concept

disturbs the TTY mode and it restores the cursor

to a new logical

position, that is, to column 1 of the next line.

Although the column

1 position has only one physical location, it can be interpreted as

two different logical locations, depending on the current CRT action

(mode).

4.10.19 Custom Encoding of the CRT

It is possible for the user to custom encode the characters displayed

on the CRY,

using the CRT "mapping" function.

This mapping ailows

the applications first to intercept characters (and CRT actions if

necessary) then to encode them.

Upon entry to the CRT DSR, a software interrupt is executed, which

points to an IRET instruction.

An application program can reprogram

the IRET to intercept calls to the CRT DSR. The program can thereby

"take over" the CRT. This is the typical method used to remap

characters

to the screen.

For instance, this feature can be used to

scan through a table, converting English characters to characters

in

some other ianguage.

Another use is intercepting "function calls"

(such as scroll

or attribute

handling)

so that

the application

program can custom encode CRT functions.

The user must be careful

when performing this operation, however, because it is possible

to

disturb the data structures of the CRT DSR.

NOTE

After finishing with this function, the user must

restore

the

vector

to its original

value.

Otherwise, the system could "go away."

After the user enters his mapping routine, he can use all registers

except

ES,

Bs,

and BP.

To use these registers, he must save them,

then restore them upon exit.

Before using this mapping feature,

the

user must look at the opcode in register AH to determine if it is a

write character request.

If so, he must also preserve

register AH

and any registers associated with the write function contained

therein. For example, to map all dollar sign symbols ($) to the

Percent sign (%), the routine monitors register AH on each call to

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

the CRT DSR. If AH contains a write character opcode, the routine

then looks at register AL. If register AL contains 24H (the ASCII

code for "$"), the user changes that register to 25H (the ASCII code

for "4%"), then executes an IRET instruction, returning to the screen

with the new character.

(The currency symbol returned depends on the

internation keyboard being used.) All registers are preserved,

but

register AL has been changed.

4.11 BISK DSR
Table 4-7 describes the disk device service routines (disk DSR) supported by the Texas Instruments Professional Computer. To access a function, place the proper opcode in register AH, then execute an INT 4DH. On return, all registers are preserved except where stated.

Table 4-7 Disk DSR Opcodes and Functions

Alb

Code

Description

OOH O1LH 02H
O3H 04H OSH OGH* 0O7H* O8SH<« OSH* OAH* OBH*

Reset disk system

Return status code (for last operation)

Read sectors

Write sectors

¢

Verify sector CRCs

Null operation

Verify data

Return retry status

Set standard disk interface table (DIT) for unit

Set DIT address for unit

Return DIT address for unit

Turn off diskette drive motors

* These functions are primarily for the use of system-level software and utilities,

4,i1,1 Reset Disk System ~- GOGH

Input:

AH = GOH

Oucpurc: AH = OCH

This function causes the disk system to restore

itself

to a known

state.

The actions performed for each supported device varies with

the requirements of the device and the device-dependent software,

In

general, the function causes the disk controller(s)

to reinitialize

before their next use.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.11.2

Return Status Code - O1H
&

Input:

AH = 01H

Output:

AH = OOH AL = Status code for last
CF = 0 (No change)

disk

I/O operation

Not all disk DSR functions are I/O operations (this one, for

instance).

A status is returned in AH for each function,

but

the

status oof the last [I/O request is always retained for later access

(via this function), if desired.

4.11.3

Read Sectors - 02H

Input:

AH = 02H

AL

Number of sectors

CH

Cylinder number

CL = Sector number

DH = Track (surface or

DL = Drive number

ES:BX = Segment:ioffset

to transfer
side) number of buffer

Output:

AH = I/O status code (For more information,
AL = Number of unprocessed ES:8X = Segment:offset of

refer to sectors
the last

; paragraph 4.11.13.)
sector processedt

This function reads data from the disk.

Any number of sectors can be

transferred subject to memory boundary limitations (The segment's 64K

boundary and disk boundaries cannot be crossed.)

* "Last sector processed" means exactly that. Even if the read was in error, the data is transferred to memory.

4-36

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.11.4

Write Sectors -03H

Input:

AH = 03H
AL = Number of sectors CH = Cylinder number CL = Sector number DH = Track (surface or DL = Brive number ES:BX = Segment:offset

to transfer
side) number of buffer

Output:

AH = I/O status code
(For more information, refer to paragraph 4.11.13.) AL = Number of unprocessed sectors ES;:BX = segment:offset of the last sector processed

This function writes transfered subject to 64K boundary and disk

data to the disk.

Any number of sectors can be

memory boundary limitations.

(The segment's

boundaries cannot be crossed, )

* j\"Last sector processed"

means exactly that.

[f the write is in

error, ES:BX points to the data

which

the DSR

is attempting

to transfer.

4.11.5 Verify Sector CRCs - 04H

t
4

Input:

AH = 04H

*

AL = Number of sectors to transfer

CH = Cylinder number

CL = Sector number

DH = Track (surface or side) number

DIL = Drive number

ES:BX = Segment:offset of buffer

Output:

AH = I/O status code
(For more information, see paragraph 4.11.13.) AL = Number of unprocessed sectors ES: BX = Segment:offset of the last sector processedt

This

function verifies

the CRCs of the specified sectors.

Because

this function is handled like an I/O function, ES:B8X must be set as

though a transfer

is to take place although no data is actually

transferred.

Any number of sectors

can be processed

subject

to

memory boundary limitations.

(The segment's 64K boundary and disk

boundaries cannot be crossed.)

:

* "Last sector processed" has little meaning

in this

this function does not actually transfer data.

case

because

4-37

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.11.6 Null Operation ~ OSH --
This function is not currently Supported.

4.41.7 Verify Data - O6H |

,

4

Input:

AH = O6H AL = Number of sectors CH = Cylinder number CL = Sector number
DH = Track (surface or DL = Drive number ES:BX = Segment:offset

to process ,
side) number
of buffer

Output:

AH

I/O status code

(For more information, see paragraph 4.11.13.)

AL = Number of unprocessed sectors

ES:BX = On error, segment:offset of WORD in error

This

function verifies disk data against data

of sectors can be processed subject to memory

(The segment's 64K boundary and the disk

crossed.)

in memory.

Any number

boundary limitations.

boundaries cannot be

4.11.8 Return Retry Status ~- O7H

1

4

Input:

AH = O7H

Output: AH = OOH
AL = Soft error status of last I/O operation

This function

returns

the

refers to an

retried.

is similar to "soft" error error that did

the Return

Status

Code

function.

rt

status of the last operation.

Soft error

not recur when

the last

operation

was

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.11.9

Set Standard Disk Interface Table - 08H

Input:

AH = 0OB8BH
AL = Standard DIT number
(Valid values are Oo through 3.) DL = Diskette drive number
(Valid values are 0 through 3.)

Output: AH = Error status (For more information, see paragraph 4.11.13.)

(Note: This function is used by the operating system software.)

Disk

interface

tables

(DITs) are

information that the device-dependent

interface with the device-dependent code

data structures containing

part

of the ODSR uses

to

for a specific disk device.

With this function, the user can set a diskette standard configurations by setting the drives's OIF numbers are defined as follows:

drive DIT.

to one of four The standard

Number

Description

G

Single sided, 48 tpi,

sectors/track, Sil2-byte sectors

1

Double sided, 48 tpi,

sectors/track, Si2-byte sectors

2

Single sided, 96 tpi,

sectors/track, S12-byte sectors

3

Double sided, 96 tpi, o@o Oo m sectors/track, Sl2-byte sectors

4.11.10

Set DIT Address for Drive - OSH

Input:

AH = OSH

DL = Disk drive number

(Valid value is 0 through 7.)

ES:BX = Segment:offset of DIT for drive

Output:

AH = Error status (For more information,

see paragraph 4.11.13.)

(Note: This function is used by the operating system software.)

Disk

interface

tables

(DITs}) are

information that

the device-dependent

interface with the device-dependent code

@ata structures containing

part of the OSR uses

to

for a specific disk device.

With

this

function,

the user can set any

configuration.

The disk drives are dynamically

by this mechanism.

disk to a nonstandard linked to the system

4-39

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.41.11 Return DIT Address for Drive - OAH

«

Input:

AH

DL

OAH Disk drive number
(Valid value is 0 through 7.)

Output: AH ES:BX

= Error status (For more information, see paragraph
= Segment:offset of DIT for drive

4.11.13.)

(Note: This function is used by the operating system software.)

Disk

interface

tables

(DITs) are

information that the device-independent

interface with the device-dependent code

data part for a

structures

containing

of the DSR uses _ to

specific disk device.

With this function, the user can access a drive's DIT for information and verification purposes.

4.41.12

Turn Off All Diskette Drives - OBH

Input:

AH = O3H

Output: AH

0

4

ES: BX

not preserved

(Note: This function is used by the operating system software.)

During regular operation, the diskette drive motors are Left ON for a

short period following a read or write operation, thereby saving the

time the motor would use to come up to speed.

Some applications,

notably

diagnostics,

require assurance

that

the motors

are not

running.

4.11.13 Status Codes

All functions return a status code

in CF.

If the carry condition

occurred and AH contains the error

in register AH and an error flag

is set (CF = 1), then an error has

code.

If the no-carry condition

is set (CF = 0), no error has occurred and AH contains a zero. The

error codes are given in Table 4-8.

TECHNICAL REFERENCE

ty) Meads
DEVICE SERVICE ROUTINES

Vaiue
COH 80H
40H 20H LOH 08H 04H 02H O1H O3H OSH 09H

Table 4-8 Error Codes
Description
No error TFime-out - drive not ready or hardware failed
Seek failed - track not found Controller hardware failed CRC error Data request error - controller failure Record (sector) not found No data - bad disk format Command error - bad opcode or parameter Disk write protected Data did not verify I/O transfer crosses 64K byte boundary

4.11.14 Disk Interface Tables (DITs)

The Disk Interface Table (BIT) structure interfaces code with the generalized disk driver code.

device-specific

Because in ROM,

DITs

contain read-only data exclusively,

The etructure of a DIT is shown in Figure 4-4,

they can be placed
+

4-41

i:
TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

---- 16 bits -~

OOH DITDIR
02H

04H

DITSEC

O6H

DITTRK DITCYL

08H | DITDSK | DITERR

Long pointer to disk interface routine
Sector size in bytes Track size in sectors; cyclinder size in tracks
Disk size in cylinders; error retry limit

All other fields depend on the code requirements of the specific device.

A. General DIT Structure

\

¢-------16 bits ---->
OOH FLPDIR
02H

Long pointer to diskette interface routine

04H

DITSEC

Sector size in bytes

:

O6H DITTRK DITCYL

Track size in sectors; cyclinder size in tracks

08H DITDSK | DITERR OAH | PRCOMP

Disk size in cylinders; error retry limit
Threshold track number for changing write precompensation

B. Diskette Drive DIT Structure

2223216-25

Figure 4-4 DIT `Structure

*
TECHNIGALPREPERENCE «

DEVICE SERVICE ROUTINES

The following procedure shows how to set up the disk DSR in

access

a `flexible disk Rees with a "nonstandard"

("Nonstandard" is a'format that usually is not supported by

Instruments Professional Computer.)

order to format.
the Texas

MOV

AH, OAH

; Set "return DIT address" opcode.

MOV

DL,<unit number>

; Any floppy disk unit (0 - 3)

INT

4DH

; Call disk DSR

LES

BX, ES: (DWORD PTR [BX]

; £S:BX := address of floppy code

MOV

<your DIT>+0,Bx

; Put address of floppy-specific

MOV

<your DIT>+2,ES

ps

code in your own DIT

Cinitialize your DIT>

; Bo whatever else you need to your DIT

MOV ES,SEG<your DIT> MOV BX, OFFSET<your DIT> MOV AH,9 MOV DL, <cunit number> INT 4DH

; EX:B8X = address of your DIT

Set "SET DIT ADDRESS"

Unit
"SSSs
; Call

number disk DSR

opcode

cn

NOTE

sh

The floppy-specific code comprehends only doubie-

density (MFM) recording format.

It does not know

how to access

single-density

(FM)

recording

format diskettes.

~~
TECHNICAL REFERENCE

BEVICE SERVICE ROUTINES

4.12 KEYBOARD DSR

This subsection describes

the keyboard DSR and the functions it

Provides to the system or application programs that use it.

It also

shows the various codes returned by the DSR for the standard

configuration of the keyboard.

The keyboard DSR functions are located in the system ROM and are

accessed

through

the 8088 software interrupt mechanism (essentially

an address-independent subroutine call).

The

typical

user

of the

keyboard

DSR is the system interface code (the BIOS).

Each

operating-system-dependent BIOS resides on a particular operating

system diskette and is loaded into RAM during disk boot.

The

functions

described

in this subsection access a buffer that is

controlled by the keyboard interrupt service routine.

All encoding

and any special handling (described in subsequent paragraphs) occurs

in the interrupt

service routine.

All discussions

of keyboard

mapping vectors refer to actions occurring during the servicing of

the keyboard hardware (not software) interrupt.

Placing an opcode in register AH and executing an INT 4AH chooses the

desired function.

All registers except AX are preserved.

The

Functions of the keyboard DSR are described in the following

Paragraphs.

;

4.12.1

Initialization Logic

a

The code for this function is automatically executed during power-up

or reboot and is not directly. available to the user.

rt performs

diagnostics on the keyboard hardware,

sends

to it the required

initialization

sequences,

and initializes

the DSR internal data

areas.

4.12.2 Read Keyboard Input - AH = 6

This function reads and removes the current character (if any) from

the keyboard buffer. The character value is returned in register AX.

If no character is ready, the DSR waits until one is received before

it returns to the caller.

This

character

has already

been

fully

encoded

(Table 4-10 lists the ASCII codes.) Typicaily, the encoded

ASCII character is returned in register AL, and register AH contains

oo.

If AL = 0, then the coded value in AH corresponds to one of the

various function keys.

(Table 4-11 lists the non-ASCII codes for the

function keys.)

1. i& pre

;

INICAL REFERENCE

DEVICE SERVICE ROUTINES

: -. ij

»

a

*

fd

@

4.12.3 Read Keyboard Status - AH = 1

This "function determines that a character is ready at the keyboard

but does not actually read it.

If no character is waiting, it

returns with the Z-flag set (ZF = 1).

If the Z-flag is reset

(ZF = 0), @& character is available to be read. The character value

is returned in AX, but is not removed from the keyboard buffer.

4.12.4 Read Keyboard Mode - AH = 2

This function determines the current mode

value

is returned in register AL in the

The definition of the byte is as follows.

of the format

keyboard. The shown in Figure

mode 4-S.

yet ststsyzti fo} reat

; Figure 4-S

I
ah

CTRL

key depressed

I
=

ALT

key depressed

= SHIFT key depressed

ll!
oan)l

Last

key was sesult of

repeat-action sequence

000 (always zero)

1=CAPS LOCK key depressed

Byte Definition - Keyboard Modes

22232 16-28

4-45

TM~/ -

TECHNICAL REFERENCE

Fe

DEVICE SERVICE ROUTINES

Because the "mode" applies - to te last character

typed and not

necessarily to the one at an ae

the queue, this function returns

valid information only, ak *,

Neeboard buffer contains one or less

characters.

In order to use this function, read the key normally, then

make a status check to ensure that the, buffer is empty.

When the

buffer is empty, the mode reading will be valid.

Use this function only if it is necessary to know the state of the

mode when the last character was; typed. _ See

the section

entitled

"Custom Encoding of the CRT" in Section 4 for an explanation of

remapping the keyboard.

|

F

4.12.5 Flush Keyboard Buffer - AH = 3

This function is used

buffer.

It simply

empties the buffer.

to "flush" resets the

(empty) the keyboard type-ahead queue pointers, which effectively

4.12.6 Keyboard Output - AH = 4

This function sends the keyboard command in AL directly

to the

keyboard,

with appropriate handshaking.

On return, the Z-flag' has

the status of the operation.

If the Z-flag is set (ZF=1), the

command was performed correctly; otherwise (ZF=0), an error was made.

The keyboard commands sent by the CPU are given in Table 4-9.

Table 4-9 Keyboard Commands

;

Register AL

Function Performed

oo
O1L* 02 03 04% os 06% 07 08

Performs a power-up reset and installs default parameters
Turns repeat-action feature ON Turns repeat-action feature OFF Locks the keyboard Unlocks the keyboard Turns keyclick ON«* Turns keyclick OFFx* Resets Returns keyboard ROM version

* Indicates the default value. kx Keyclick requires a hardware modification.
(It is not presently supported. )

4-46

TECHNLCAL REFERENCE

DEVICE SERVICE ROUTINES

These commands are intended for "one-shot" use, to set the keyboard

mode at power-up.

Although they may be sent at any other

time,

the

overhead of receiving several commands can cause the keyboard to miss

fast keystrokes.

There are other ways to implement these commands.

A CRT emulator program may be required to turn repeat-action

on and

off

in response to escape sequences from a host.

For example, if an

application

needs

to set/reset

the repeat-action mode,

or

to

lock/unlock

the keyboard

in real

time,

these

functions

can be

programmed into a keyboard

mapping

routine.

Refer

to paragraph

4.10.18.

4.12.7

Put Character Into Keyboard Buffer - AH = S

This

function

places

the 16-bit

value

in sx directly into the

keyboard buffer.

On return, if the Z-flag is reset

(ZF=0),

the

character

was placed in the buffer (this is the usual case).

If the

Z~flag is set (ZF=1), it means that the buffer was full and the

character

was

not placed in the buffer.

(The character remains in

BX.)

Assuming that the buffer was empty at the start,

and

that no

keys

on the keyboard have been pressed, a Read Keyboard Input (AH=0)

function call retrieves this character.

Any 16-bit value can be

placed

into

the buffer,

but unless

the user has some explicit

application that understands "strange" characters from the keyboard,

it is recommended

that only standard characters generated by the

keyboard be used.

The format for the characters is the same as

that

given in the Read Keyboard Input function.

To place a normal ASCII character

call with the character value

in

function keys into the buffer,

extended function value in SH, and

Table 4-11.)

A

into the buffer, make the function

AL and zero in BH.

To place

make

the «function call with the

zero in BL. (See Table 4-160 and

This

function is useful when a program needs characters

though they had been typed.

Two examples follow.

to appear as

*

An application can "echo" feature by

disable

the operating

system printer

inserting

the appropriate

"echo off"

character

(CTRL N_ for

MS~DOS ) into

the buffer

during

initialization.

The operating

system

sees

this as just

another key and turns off the echo.

x

Many operating systems lack a function can provide one.

chaining feature,

and this

Immediately before a program

terminates, flush the keyboard buffer, then place characters

Simulating a typed command

into

the buffer.

When the

program terminates, the keyboard buffer,

the operating system takes over, and performs that command (which

reads could

invoke a second program, thereby "chaining" programs).

"TECHNICAL REFERENCE
=

DEVICE SERVICE ROUTINES

4.12.8 General Keyboard Layout

The outline of the keyboard and the key-position numbers associated

with each of the keys are shown in Figure 4-6.

The numbers

in the

upper right-hand corner of the keys are the scan codes sent from the

keyboard. These codes are used internally by the keyboard DSR to

encode a key when pressed,

The mode keys (marked ***) do not

generate a scan code.

(12)

(2 («: (E3 B

©

=) (+) be (8)

(wi)

Mee) 2

(

(4) (5) @)

mt

oJCIU

2223216-27

Figure 4-6 General Keyboard Layout Showing Scan Codes

TECHNICAL REFERENCE

;

DEVICE SERVICE ROUTINES

4.12.9

Character Codes

Table 4-10 lists the character

by the keyboard DSR.

The

keyboard DSR, and the returned

this table.

and extended function codes returned

modes are handled internally by the

code reflects

the mapping shown in

Tabie 4-10 Standard Keyboard Character Codes

ee

ee ae ae ee

eee

ee

ee

oe oe oe oe

ee le ee ee

oe oe ee

ee

ee

ee

De bee

lee

DL

eee
FS

OS

3. Se

Ss es

ew ee

ee

ee

Se Eee

ea

EE

Ee

3FeisfS Sek{cfS G62k}afS

Ee

oe

6Ck]

on
FS

neo

eee

i O02 03
| 04 | os i 06
07 i o8 | 09 | 10 i ii
pi er
| 13 J 14 { 15 | 16 | 17 f is i is
i207 i 21
} wes
| 23
| 24
i 25 | 26
| 27
J} 28
j 29
| 30 | 31
; 32
i 33 { 34
{ 35

! £6 | £7 | fs | (3s { £10 | f1i1 jmeti2 | L | 2 { 3
Th 2
| Ss
6 | 7 { 8
S | 0 | =
| =a= i BS
fi &
| S
| Ap
| SP | HT
; 2
ff ---
| 0
|} CR { 4
{ 5
| 9 | -
i 2

40x; sf6 41x«|sf7 42*|sf98 43*|sf9 44x|(sf10 4S*|sfil 46*x}sf12 31 | ' 32 | @ 33 | #
34 | §
35 | % 36 | " 37 | & 3e | * 39 | 30 | ) 2D | ~¥
3D {| + 68 {| BS
60 | ~
3D | =
25 | +
20 | SP 09 |Bktab
eBoy, es
-- J mm-
3G | 0
obd| cR 34 | 4
35 | Ss
39 } 9 2D {| =
32 | 2

S9*icf6

SA*|cf7

SB*|/cfs

SCx|cf9

SD*«fcFf1LO

Osx«fef1l1

09*|cf1i2

21 | ---

40 {| Fnul

23 | ---
24 | ---

25 | ---

SE | RS

26 | ---

2A | ---

28 | ---

29 | ---+

SF f us
2B {| -~oO8 | DEL
TE f me-

3D f =
2B | ¥p

20 | SP

OF*x! HT
3 iL | ee

== f ---
30 | 0
obBY{|{ cR

34 | 4

35 | Ss
39 }] 9

2D { -

325

2

63*)lafc 64*j/af7 6S*fafs 66x )j/afs 67*jafio OAxfafil OB«j/afi2
-- {| alti O3%*} alt? -- | alt3
-- | alt4
-- } altS 1E | alté ~~ | alt? -~ | alts -- {| alts -- | alto LF {| alt-
-- { alt= 7F | ---
se f ene
3D | pfi
2B | pf2
20 j p£f3
oS | pfé¢
31 | -~-~
-- | ---
30 f| ---
oD J --34 {| ---
35 | +---
39 | --~ 2D $} ---
32 | ---

6D*j FS6

|

GEx{| F7

}

6F*e) FS

|

7Ox} FS

|

71ix{| F10

|

Oc*x] Fil

'

OD*x| Fi2

:

78% [

i

79% |

|

7A |

f

7B*{

j

7Cx |

{

7D* |

4

i

7Ex]|

|

7F* i

|

Sor]

{

1x |

|

82x |

|

63x}

|

-- | Back space

|

om |

Bcx|] Numeric =

|

9sD*{] Numeric +

|

SEx{ Numeric SPACE}

SF*x{| Numeric TAB

|

-- | Numeric 1

i

-- | (unused)

~~ {| Numeric 0

!

-- | Mumeric ENTER|

-- | Numeric 4

|

-- | Numeric §

f

-- | Numeric 9

j

-- | Numeric -

|

-- {| Numeric 2

"ooo

eee

eww

eT

ee

wee

ee

Bee

ew ee

wee

ee

ee

ee

ee

ee

eee

ee

oe

TECHNICAL REFERENCE

- DEVICE SERVICE ROUTINES

Table 4-10. Standard Keyboard Character Codes (Continued)

ggg

ggg gp ag gpg gpm gg ggg

--

| Key #*{ Normal | SHIFT {| CTRL

a

ee

| ALT

eee

eee rrr ror

| Comments

|

, 36 Jf -m= me fo eee me fo mee me fF ere one | (Unused)

, 37% fowre me fo eee ce | mee me J cre Ue I (Unused)

(3 ot nn

-- a

ean aie (Unused)

ee AC peed

37 lies.

37 | ee 7

37 | --- -* | Numeric 7

|

i 40 `| 8

38 | 8B 36 | 8

38 | --- -~- | Numeric 8

|

{} 41 #J| 6

36 } 6

36 | 6

36 } --- -- { Numeric 6

|

; 42 | :

2Cul F

2c |

2c $ --- -- [| Numeric ,

|

i433) otis

33 { 3

33 } 3

33 } --- -- | Numeric 3

}

{; 44 | :

2E } ;

2E |

2--E }| --- -- | Numeric .

}

f 45 | --- me fo cee re fo ree re | cnr oe fF (Unused)

i 46

[| Cort 4D*}sC-rt BAx|[cC-rt 74*fac-rt 4E*} Right Arrow

!

} 47 |f Ins 52*} sins 28%} cIns 29*] alns 2A*] INS

|

} 48 {| Del S3*] sDel 36%] cDel 39*}| aDel 3A*j DEL

|

' 49 } HT O9 |[Bktab OF*{ HT O09 { --- -- { TAB

1 sO | gq 71 | @ S11 { DCL 2a $f altQ 10%]

|

tS Loui | pw 77 | WwW 5S? | ETB 17 {| altW 11*|}

|

tf s2 | e 65 | E 45 | ENQ OS } altE 12%}

1 Ge}

&

72 | #R

S52 } Dc2 12 J aitR 13%]

j

|} 54 f ¢t 7.4 |ceat

S54 {| Deca 14 | altT 14*|

|

; sS f ¥ 79 | Y 59 { EM 18 | altY 15%]

|

| S6é fou

75 |) OU SS | NAK 15 | altuU 16%}

ey eee ee | 69 | I 49 | HT O98 f altI 17%]

i se { o 6F | oO 4F | SI OF | alto is*|

Z

|

| so | p 704 P So | DLE 10 § altP 19*}

{

| 60 j f SB jf

7B j Esc 1B | --- -- |

|

lyeriG i. |) jee hl SB | } 7p | GS iD {| --- -- {[{

|

| 62 | LF OA | LF OA | cLF 75*{| aLF 4F*] Line Feed

|

} 63 jess -- | br -- | cme ce | ore oe | (Unused)

|

|} 64 | C-up 48*|sC-up B8B*)|eC-up B84%e]aC-up 49%] Up Arrow

i

; 65 {| ESC 1B | ESC 18 | ESC 1B [| --- -- {| ESC

| 66 { a 61 | A 414 { SOH G1 j altA 1Ex|

! 67 | 8 73 } Ss 53 } pcs 13 j] altS iF*{|

|

| 6s | 4a 64 | DBD 44 | EOT G4 | altD 20%}

|

| 69 |j f 66 | F 46 | ACK C66 } altF 21*}

{

i) .70 sul) ag 67 | G

47 }| BEL oO7 {} altG 22x]

[

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

Table 4-10. Standard Keyboard Character Codes (Concluded)

I

I

Ne

| Key #] Normal j| SHIFT j{ CTRL

ee

ee

ee ee ee ee

ee

ee oe ee

| ALT

Comments

|

{ Fi

{ h

6B | H

4s | BS 08 j altH 23%|

{

1 te) ff

6A |

4A | LF OA | altJ3 24%]

/ 73 | &k 6B | K 4B 4 VT OB | altK 25%]

74

| 3

6c | %

4c | FF oc j| altL 26%]

i

pj 7S |

38 }

JS oe RN) eee

|

ih) Koso HT)

2758) il oe rea ty eee Oe Ee ees Ce

|

} 77 j cR OD j cCR oODf cR OD |--- -- }$ Return

Tt bap

Sc | | 7C f FS 2¢C [ --- -- |

|} 79 | Crlf 4BefsC-i1f SB*fcC-1lf 73*)]ac-lf 4c*! Left Arrow

|

j} 80 | Home 47*|]sHome 86%*|cHome 77*xjaHome 85*| HOME

i

Jj 8st | SP 20 {, SP 20 | SP 20 |} SP 20 J Space bar

|

f 92 f{ 2z 7A |} Z SA | SUB 1A | altZ 2cx%|

|

| e3 | x 764) Xx S58 | CAN 18 { altX 2D*{

|

} e@4 ¢ ¢ 63 } c 43 |] ETX o3 | altc 2Ex|]

f 8S jf v 764 VW S6 | SYN 16 | altV 2Fx]

|} 86 | b 62) B 42 | STX 02 | altB 30%]

[672 | en 6E |] N 4E | SO OE f altN 31%]

| ss §f am 6D j

4D | CR OD { altM 32«/]

j; eo | , 2c} < Id iets

oe

j} 90 {Ptogl 72%] wee ee f --- -- $§ =--~ -- | PRINT

i

y EFT of 2E } > BE f --- -- { --- -- |

|

W}e9s9e2 |NepfoFaooh2F f m?ooiei) Ioee Be "tp joee e-- e WiCunused)

| |

{} E9X5S

fofo) -i-t-e

-e-e J =e=S=

-- [er-e-s-

SS press
-~ | ---

ee (Unused)
-- $ (Unused)

|

J) 96 jf C-dn SO*j{sC-dn 89*}cC-dn 76*|aC-dn S1*} Down Arrow

|

, J

ES
98

|Jf -o-e- -- [ J e---ee-- f -e-e~

e--e

fp eet
| --~

e--el) | c (Uneus)ed)

|

Vie?

Se

een en |e ee i ee a e(unused)

f 100 | Ppau ** | Pbrk ** | --- -- | --- -- {| BRK/PAUS

|

f 102 | £2 3B*}sf2L

S4x|[cfi

SE*xjafi

60x} Fi

f 102 | £2 3¢C*|sf2

SS*jcf2

SFefaf2

69x} F2

{

f 103 | £3 3D*{[sf3

S6x|cf3

60% jaf3

6Ak} F3

} 104 j £4 3E*}sf4

S7keick4

61ikjaf4

6Bx| F4

--_----S ee

Se ae eee

eee eee eee

eee

eee

eee

eee

ees

a

ea

Notes to Table 4-10:

kt. Key # is shown in Figure 4-6.

2m

In the "Normal", "SHIFT",

"GTRL",

and "ALT" columns, both the

"graphic" and the hexadecimal values of the character

are given

in

the form: GGG HH. Mnemonics are used for the "graphic" descriptions

of the function keys.

These are generally self-explanatory:

a

leading a, 8, or c¢ indicates ALT, SHIFT, or CTRL, respectively.

For

example,

f1 is the Fl function key; afi is the Fl key pressed while

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

holding down the ALT key. C~rt means cursor right (right arrow), and

cLF = CTRL linefeed.

'

`we

ap

ma

3. Entries consisting of ""--- --" indicate that the combination is

suppressed within the keyboard DSR.

4,

Entries consisting of "xxx **x" indicate special handling in the

form of direct

action

by the keyboard

ODSR.

(For details,

see

paragraph 4.12.14.)

hy

Normal

(ASCII)

characters are returned in register AL with the

scan code key number in AH.

6. Entries consisting of "xxx yy" are returned with aAL=0 and the indicated value (yy) in AH.

7

An asterisk

4-il1.

after a number means

extended

codes,

listed

in Table

4.12.10 Extended Codes

The "extended" codes are non-ASCII

codes.

They represent

special

function keys on the keyboard. To distinguish these codes, register

AL contains 00 upon returning from a Read Keyboard (AH=1 or AH=2)

function call, and the extended code is in register AH. The code

range (OGH through FFH) includes normal ASCII codes.

The extended

codes are given in Table 4-11. Use the mnemonics to cross-reference

with Table 4-10.

"

Table 4-11

ie
Extended Function Codes

Hi MSD* {jl Ome | ripe fy 2s lie Sieule 6400) Pe Sse |Peo ms) m7 ioe eeeoe ||

J) LSD | eon nn ee en nnn nn nr nr nn

nn re rr ee ernie

)} O jPbrk JaltQ JfaltDb JaltB | f6 =| C-dnj cf3 |] af9 falts |

{; 1

fPpau jaltW faltF faltN | £7 Jac-dn} cf4 jafio jJaito |

{ #2 BT

faltE faitG JjJaltm {| f8 { Ins | ¢cfS fPtogijalt- |

| 3 JFnul JaltR faltH |

tf £9 | Del | ecf6 [cc-1lfjalt= |

[e.4 |

faltT falts |

| £10 {| sfi1 | cf7 fec-rtjcc-up|

j; 5s |

Jalty JaltK }

| £11 | sf2 j cf8 | cLFEF faHome]

;6 |

faltU jaltL }

| £12 | sf3 {| cf9 |[cC-dn}{sHome}

{ito 7 |

Jaltz |

|

| Home| sf4 } cf10|cHome j

|

f 8 {sf11 {alto j{sIns j{sDel {| C-up| sfS {| afi jaitl }[sc-up]

tf 9 fsf12 faltP felIns {cBel jfac-up{| sf6 | af2 falt2 |scC-dn}

ineA we cLi iwi

jJafns jaDel |

{ sf7 } af3 Jailt3 jsc-rt]

lon B ej cri 2 a

|

} £1 j cr-lfj} sfs | af4 jalt4 |sc-1f}

[ee cr latr iS)
|} Dd fafi2 |}

falt2 | £2
faltx | £3

fac-1ff]{ sf9 | afS faltsS | pfi |
| Cert] sf10| afé falte | pf2 |

Poel I al

faltA Jaltc | £4 fac-rt| cf1 | af7 jalt7 {| pf3 |

| F {BktabJaltS faltv {| £5 {| aLF j cf2 | afe faits | pf4 |

* MSD = most significant digit; LSD = least significant digit

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.42.11 Keyboard Modes

In the standard keyboard, the mode keys have

the effect

shown

in

Table 4-11.

The latching

(push-push)

CAPS LOCK key affects the

alphabetic keys (S0-S9, 66-74, and 82-98 on the standard keyboard) by

forcing

the SHIFT mode.

Normally

the alphabetic

keys produce

lowercase characters, and the SHIFT key temporarily causes them to be

uppercase.

When the CAPS LOCK mode is invoked (the CAPS LOCK key is

latched down and the LED in the CAPS LOCK key lights), the alphabetic

keys produce uppercase and the SHIFT key has no

further

effect

(on

the alphabetic keys).

In the standard encoding, the only valid combination of mode keys is

CTRL/ALT/DEL,

which is used for system reset.

Simultaneously

Pressing

the CTRL,

ALT,

and DEL keys results in the keyboard DSR

initiating the equivalent of a system power-up reboot.

The action is

handled internally by the DSR and does not return ae code.

This

function

is "hardwired" and cannot be disabled.

In any other case,

when two or more mode keys are pressed simultaneously,

only one is

recognized.

The order of precedence, beginning with the highest, is

as follows:

ALT, CTRL, SHIFT, and CAPS LOCK

a=

See

The ALT key has a special use, letting the user enter any character

code (O0OH-OFFH) from the keyboard.

When the ALT key is held down and

the decimal

value

of the desired character isstyped on the numeric

keypad with three keystrokes,

the value is returned

to

the

application

as a normal character directly through the Read Keyboard

Input (AH=0) function.

If fewer than three digits are typed,

the

next non-ALT key struck sends the currently accumulated ALT/NUM value

(from the first one or two keystrokes).

If the first one or two

keystrokes were the zero key, the next key pressed sends

its normal

character,

because

the zero

is simply a "place keeper" and adds

nothing to the ALT/NUM value.

Pressing more than

three keys

sends

the accumulated value and starts a new three-keystroke sequence.

Example:

ALT 003 piaces the value for an ETX in the keyboard buffer. ALT 3, followed by any non-ALT key performs the same function.

4.12.12 Type-Ahead Buffer

The DSR implements a circular type-ahead queue,

to 15 keystrokes.

(Fach keystroke is 2 bytes.)

filled, entering further characters from the

which can buffer up If the queue is
keyboard sounds the

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

system beeper. queue pointers,

The Fliush Keyboard Buffer (AH=3) effectively emptying the buffer.

function

resets

the

=o * a4

4.12.13 Repeat-Action Feature

If the repeat-action feature (the default) is enabled, there is a

half-second delay and ali keys become repeat-action at a 15-cps rate.

Repeat-action characters are ignored when the queue

currentiy

contains more

than one pending character.

This means that the

application does not have to worry about the repeat-action "coasting"

problem. That is, if the application does not or cannot read the

keyboard input faster than the repeat-action rate, the undesired

repeat-action characters are not queued and the keyboard does not get

a@Qhead of the application.

4.12.14 Special Handiing

These paragraphs describe functions handled by the keyboard DSR.

Several of these require immediate reaction (for example, pausing the

output

routine so a fast~-scroliling screen can be read).

Most of the

keyboard DSR functions are implemented with

the software

interrupt

facility of the 8088 microprocessor.

Fach of the defined interrupt vectors points to some default piece of

code

that

either

does nothing

(for example,

a single

[RET

instruction)

or performs

some system function.

TAn application

program

can

change

these interrupt `vectors in order to gain direct

access to a function.

However, the application must preserve

the

original contents of the vector and restore it before terminating and

returning to the system.

If the application routine is used, it must

end with an IRET or the equivalent (FAR) RET 2, which allows flags to

be passed,

The stack

used

is the internal

stack

of the keyboard interrupt

service routine and only 10 levels (20 bytes) of stack are available

to the user's routine.

Interrupts are disabled when the user routine

is entered (by the INT instruction). Interrupts should be re-enabled

immediately

unless

it is necessary

for

them to remain disabled.

Registers AX, BX, CX, DI, and ES can be used (information

is passed

in AX); any others must be preserved.

When the available stack is

too small, the routine must switch to an internal stack of sufficient

size (including 8 bytes for possible interrupts).

Also, the routine

is executed

as a part

of the keyboard interrupt service routine,

which means that no other keystrokes

are accepted

until

the user

routine finishes and returns.

The normal way to communicate with the

outside

world

(outside

the service

routine) is to set a flag and

watch for it in the application.

This, for example, is how the SREAK

function is implemented in MS-DOS.

Control should not be retained by

the user's routine unless a complete system initialization is to be

performed.

4-S4

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.12.15 User-Available Interrupts

The following

is a summary of the software interrupts (performed by

the keyboard DSR) that can be used by application programs.

The

interrupts

are presented in their order of execution.

The number in

parentheses,

the "interrupt

type," is used

in

an

interrupt

instruction.

The absolute address of the corresponding vector.is the

interrupt

type times 4. As an example, the address of the keyboard

mapping vector is SSH x 4 = 16CH.

<Any of the special

key interrupt

functions

can be bypassed by re-encoding the key code.

For more

information on the key code, refer to paragraph 4.10.19.

The keyboard DSR interrupts and their mapping vectors are:

* Keyboard mapping (SBH) * Program pause (SCH) * * Program break (SDH) * * Print screen (SEH) * * Keyboard queueing (SFH)

ra
* These interrupts occur after internal encoding.

4.12.15.i

Keyboard Mapping.

This interrupt is" performed each time a

key is pressed but before it is encoded, allowing the user to encode

the key.

When the user encodes the key, the DSR Places the key code

in the queue and performs

the keyboard

queuing

(SFH)

interrupt.

Ctherwise,

the DSR encodes the key, checks for the special keys, and

then queues the key code, causing

the keyboard

queuing

interrupt.

For more

information on using this interrupt to remap the keyboard,

refer to paragraph 4.10.19.

4.12.15.2 Program Pause.

Pressing

the (unshifted)

BRK/PAUS key

causes

a software interrupt and allows the user to perform an action

or return a@ key code.

Ft returns an extended code

(refer to Table

4-11) to the caller if desired.

At system power-up, the vector is

set so that the PAUS key sequence causes a screen hold, which stops a

fast-scrolling

screen.

An application program can change

the

interrupt vector in order to support a pause function of its own, but

the program

is responsible for remembering the original vector and

restoring it before terminating.

The carry flag determines the action of the keyboard

DSR

on return

from

the software interrupt.

If the carry flag is set, the DSR does

nothing else and simply exits.

If the carry flag is reset, then

the

character

value in AX is placed into the queue.

Before the software

interrupt is executed, the carry flag is reset and the extended

code

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

for the program pause function is placed in AX. Therefore, if an

IRET instruction is used to return instead of the default ROM pause

routine,

the DSR returns

the program pause function code to the

application.

Because the carry flag is used to pass information, the

IRET instruction must be simulated with a (FAR) RET 2 if the user

needs

to return

with

the carry

flag set.

(The IRET instruction

restores flags to their pre-interrupt state.)

4.12.15.3 Program Break. Pressing the (shifted) BRK/PAUS key causes

a software interrupt and allows the user to perform an action or

return a key code.

It can be set to return an extended code (see

Table 4-11) to

the

caller,

if

desired.

During

power-up

initialization,

this

interrupt

vector

is set to point to an IRET

instruction so that the BRK key sequence is ignored other' than

returning the break code.

An application program can change the

interrupt vector in order to support a break function of its own.

However,

the program is responsible

for preserving the original

contents of the vector and restoring it before terminating.

For more

information on the

encoding/software-interrupt

technique,

see

paragraph 4.12.15.

4,12.15.4

Print Screen.

Pressing the SHIFT and PRNT keys causes

another software interrupt.

The user can perform an action or return

a key code. This interrupt normally vectors to an IRET instruction

Within the ROM.

The DSR checks the carry flag upon return, as

described in paragraph 4.12.15.

The carry flag is set before the interrupt is executed,*so that when

the routine consists only of an IRET, the key is effectively ignored.

This can be (and is, by the MS-DOS BIOS) patched so that it vectors

to an actual print screen routine. This routine executes as a part

of the keyboard interrupt service routine and, therefore, cannot be

interrupted by another keystroke.

The preferred way to handle

the

Print

Screen

function

is to use this interrupt to start the Print

Routine (in the background) then return

immediately,

thereby

reenabling the keyboard.

rad Bee ik)

Keyboard Queueing. This software interrupt occurs every

time a character, whether encoded by the DSR or by the user,

is

Placed in the type-ahead buffer. This interrupt lets the real-time

OS know when there is a character to read. The user can choose to

ignore the key (not queueing the keycode).

Refer to paragraph

4.12.15 for keyboard queuing interrupt conditions.

4.12.16 Custom Encoding

An application program can encode the keyboard using this function.

Fach time a key is pressed on the keyboard, the keyboard sends one or

two key codes to the DSR. The mode keys are handled internally.

(For more information, refer to paragraph 4.12.17.)

The DSR performs

a software interrupt each time it receives a key code (not including

the mode keys).

Normally the interrupt vector points to an IRE&T

instruction.

An application program can reprogram

the vector

to

TECHNICAL REFERENCE

iene

DEVICE SERVICE ROUTINES

rvieensctetetorrc,ecpotmtbheintahatepispoelnicak(teCiyoTnRL/coAcdaLenTs/.DtEakLe).BeccoanTutshreoekTM.evferdrQtyientevheirnytgthhaticnogmeisbnuttetrhcrteohpeutgshsystthteihmse

key codes keys, then

typically scans executes a (FAR)

through gome tables RET 2 instruction.

to encode

its

special

NOTE

It is essential that the application restore

the

vector

to its original value after completion.

Otherwise, the system will crash when the special

encoding routine is later written over.

When the software interrupt is performed (from the keyboard ISR)

the

keyboard

scan

code

AL, the mode byte is

(including the in AH (the mode

repeat-action byte is shown

bit, if set) is in in figure ) and

the carry flag is set (CF=1).

If the carry flag is reset (CF=0) when

returned

from the interrupt, then the standara encoding is bypassed.

Instead, the values in AL and AH are placed directly into

the

type-

ahead buffer. keyboard.

This is one way to change the standard encoding of the

If the

the

carry

flag is set, and the value of AL

keystroke is ignored entirely,

and nothing

igs returned is placed

as OFFH, in the

buffer.

This

some function

repeat-action

can be directly
bit is

used when and does
included

the special handling:routine performs

not need to send a character.

The

in the scan code as the high bit of AL

and in the mode byte as bit 3 of AH.

The user can

choose

which

of

the two is more accessible to his particular routine.

If the the user

scan code is used must strip off

in a table look-up or a direct comparison,

the (possible)

repeat-action

bit

(the

instruction

is AND

the IRET instruction

AL, 7FH).

Because this is a software interrupt,

must be simulated with a (FAR) RET 2 in order to

pass flags back.

4.12.17

Keyboard Interface Protocol

Pressing a key on the keyboard sends

a byte representing

the key

position

to the keyboard DSR.

If the state of the mode keys (SHIFT,

ALT, CAPS LOCK, and CTRL) has changed since the last

keystroke,

the

key-position byte is preceded by a byte showing the current status of

the mode keys.

The mode byte is never sent alone.

It will always be

followed by the key-position byte.

The mode byte is never.

because it is sent only if

transmission.

The mode

function.

sent during a repeat-action transmission,

the mode has changed

since

the last

cannot

change

during

the repeat-action

4-57

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

The second byte (key position) contains a repeat-action key bit (bit

7iE.

This

bit

is set to 1 during a repeat-action key transmission,

and reset to 0 during a non-repeat-action transmission.

If the key

is still pressed after a half-second delay, the code is sent again,

this time with bit 7 set to 1. The keyboard remapping

routine

uses

this bit to suppress the repeat-action key function when necessary.

Alli communication with the keyboard is:

* Asynchronous

* Serial

* 8 data bit

* 1 stop bit

* Even parity.

The keyboard transmits its data at 2440 bps and receives its commands at 305 bps.

Both bytes have

similar formats, as shown in Figure 4-7,

However,

bits 3 through 6 of the mode key status byte are all set to il.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

T[T eT [2[2D Jo] aster rae

PET

Control Alternate Shift = 1111 (denotes first byte) Caps lock (uppercase)
Parity
lPTL]secon ore

Repeated character (repeat-action keys)

Parity

©
22232 16-258

Figure 4-7 Byte Definition - Keycode

4-59

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

The keyboard understands

Keyboard

Cutput

(AH=4)

acknowledges each command.

several commands, `as explained in the function, and the, keyboard generally
`<

The codes sent by the keyboard (refer to Tables 4-10 and 4-11) range

from scan code 01 through scan code 104 (O1LH through 68H). The spare

scan codes (from 69H through 6FH) will possibly be assigned in the

future.

If so, the size of the standard encoding tables will also be

increased.

Codes 70H through 73H are status codes

returned by the

keyboard

in response to commands.

Codes 74H through 77H are unused

but reserved, and codes 78H through 7FH are for encoding the mode key

status byte. For more specific information, refer to the paragraph

entitled "Receiving and responding to commands from the system unit"

in Section 2,

4.13 PARALLEL PRINTER PORT DSR

The following printer port use it.

paragraphs describe the functions that DSR provides to the system or application

the parallel programs that

The printer compatible characters,

OSR provides

routines

to implement

a

Centronics-

parallel port interface.

The user is able to output

get printer status, and initialize the printer.

The printer DSR functions, Located in the system ROM, * are accessed

through the software interrupt mechanism of the 8088 microprocessor.

To choose a function, place the opcode in register AH, place zeros in

register DL, and execute an INT 48H instruction.

(For an explanation

of register DL, see paragraph 4.13.4.) All registers are preserved

except AH, which always returns with the printer status.

(See

Paragraph 4.13.3.)

The functions available are:

Output Character to Printer (AH=0, Initialize Printer (AH=1, DL=0) Return Printer Status (AH=2, DL=0)

DL=90)

4.13.1 Output Character to Printer - AH = 0, DL = 06

This function sends the character in AL to the printer port.

The

BUSY signal from the printer is checked before sending the character.

If the printer is still busy after approximately 0.33 s, the DSR sets

the time-out bit in the status byte (in AH) and returns. If the

printer is not busy, the DSR returns with the time-out bit reset.

Any unusual conditions on the status signais from the printer cause

the printer to go BUSY.

Time-out also occurs

if the printer

sets

FAULT,

PAPER OUT,

or NOT SELECT.

The printer can also set BUSY,

causing a time-out.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

ft generally is not advisable to rely on the time-out of the Printer

output routine during regular use, especially if one is using the DSR

from the printer task of a real-time OS. This time-out is a software

loop and causes the application to "hang" during the time-out period.

The

preferred

method

has

the application watching the SUSY signal

through the printer status call so that the application can implement

and control a time-out.

The standard sequence used to print a character is:

REPEAT
interrupt 4BH with AH = 2 and "Return Printer Status."
UNTIL
STATUS = NOT BUSY END

DL = 0 (see paragraph

4.13.3,

INTerrupt 4BH with AH = IF STATUS = (time-out) THEN
<handie the error> END

0, DE = 6 (FAULT or

and AL = <`¢character> PAPER OUT or (NOT SELECTED) )

Note:
Refer to Figure 4-8 for byte definition Return Printer Status function.

of the `

4.13.2

Initialize Printer

- AH = 1, DL = 6

*

This function activates the INIT signal on the interface causing

the

Printer

to perform the equivalent of a power-up reset.

The specific

action taken is printer-dependent (refer to the appropriate

printer

manual).

The

system

software

activates this signal only once, at

actual system power-up (not on system reset CTRL/ALT/DEL).

4.13.3

Return Printer Status

- AH = 2, BE = O

This

function

reads

the printer

status

port and returns

the

information

in register AH.

This is the same information as that

returned after the Output Character to Printer (AH=0, DL=0) function,

and the Initialize Printer (AH=1, DL=6) function.

The bits of AH are encoded as shown in Figure 4-8.

4-61

TECHNICAL REFERENCE

.

DEVICE SERVICE ROUTINES

7tetststs}2trto

Figure 4-8

ie

Time Out (on busy) (not used)
Busy Paper Out
Selected (online)

Fault

27232 16-29

Byte Definition - Return Printer Status

4.13.4 Use Under an Operating System

When the software interrupt technique interfaces with ROM routines, a

DSR can be enhanced or replaced by patching its interface

interrupt

vector.

Under MS-DOS,

for example,

the serial printer support

emulates the parallel printer functions of the ROM.

.

The printer interface is implemented by patching a small

routine

in

front

oof the printer

interrupt

vector.

This' routine looks at

register DEL to determine the desired printer.

If DL=0, a jump to the

ROM routine is made, and the user is unaware of the patch.

If bBL=1,

AH is decoded to perform the appropriate function on the serial

printer.

If DL = FFH, then the desired function is performed on the

default {currently configured) printer.

Because

the serial

support

emulates

the status

returned by the

parallel routines of the ROM, the user knows of the operation only

because he set register DL. Some operating systems do not require

that register DL be set.

In the case of MS-DOS, however, the DSR

is

extended in amanner that requires the setting of DL. Refer to the

documentation appropriate for the operating system in use.

4-62

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14 WINCHESTER ROM

-

The Winchester ROM, on the Winchester

controller

board,

interfaces

with

the system ROM software, specifically the system disk DSR.

The

Winchester ROM is addressed by the system processor.

Ita address, as

determined by the hardware, is OFSOCOH.

The convention

locates

the

ROM at the address (as seen by the software) of OF400:400GH.

In addition to the disk DSR software, the Winchester ROM contains the software necessary to drive the Winchester controlier, to boot up the system from the Winchester disk, to format the disk, and to run diagnostics (both power-up and advanced) on the controller and disk.

After initialization, (read, write, verify, subsection 4.11.)

all regular operations of the Hinchester and so on) are done through the disk DSR.

ROM (See

4.14.1

Limitations

The DSR and other utilities provided by the system ROM limit the

types of Winchester drives that can be used by the system.

The

limits are as follows:

x X x ¥ cylinders per drive where 1 < X¥ < 256 ard 1 < ¥ ¢ 15

* 16 surfaces per drive

* 17 sectors per track

* S512 bytes per sector

* 235 error retries

* 21-bit error-burst length

Most of the that describe the following

routines

within the ROM are driven by data structures

the type of drive. The system is powered up assuming

drive parameters:

iS3 cylinders 4 surfaces
12S first track of 64 first track of Lo error retry Li-bit error-burst 3-ms step option

reduced write current write precompensation
length

If the use, an install

default

parameters are not correct for the type of drive in

Initialize Winchester Disk System option call must be made to

the correct parameters.

The system can boot the first sector

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

with the default parameters.

"4 4.14.2 System Interface

The Winchester controller board ROM is initialized to the system when

it is called by the system ROM following the power-up self-test.

The

system ROM tests the HWMinchester disk controller ROM to make certain

the controller is functioning properly before caliing it. To allow

the system ROM to test and call it, the Kinchester disk controller

ROM contains a header defining the ROM size, the entry point of the

ROM, a version number for the ROM,

and an

identification

message

preceded by the message length.

The entry point called by the system ROM is required to

device- dependent initialization and, optionally, to boot the

from the device that the called ROM serves.

For the Winchester

the operations are as follows:

do any system
disk,

* Set the RAM area of the ROM in the system. Set the device-

installed bit in the system configuration word. This second

step permits the system unit to "sense" that the controller

is installed,

and,

under the diagnostics diskette Display

System Configuration test, to display ali options installed

in the system unit.

x If the calier has passed the "do not boot flag" (OFFFFH in

register BX), return control to the calier.

Otherwise (with

OQ in register DX), the initialization sequence continues.

* If the user has pressed the ESC key, control geturns to the system ROM and the system boots from the diskette.

xk Otherwise,

display the Winchester disk controller ROM sign-

on message and execute the controller's power-up tests.

* Test all ROMs that have a lower priority than the Winchester

disk controller ROM and then call them. The "do not boot"

flag (DX = OFFFFH) must be set so that the ROM can do any

required initialization of associated hardware.

;

x Read in the boot sector from the disk, check usability, and jump to the code in the boot sector.

it for

* If any errors occur in the above area, control is returned to the system ROM.

4.14.3 System RAM Usage

©

The Winchester disk ROM uses 30 bytes of RAM in the system This RAM is allocated as a contiguous block of memory previously called ROMs have been allocated their RAM space. block is pointed to by a word in the system vector area.

RAM area. only after
This RAM The data

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

structure of this vector srea is given in Table 4-12.

Address

User

Table 4-12 RAM Segment Pointers * Value

Address

0000:6180 0000:0182 60G000:0184 0000:0186 0000:0188 OCO0O0:018A
0000:0168C COOC:OCISE
0000:0184 0000:0186 0G00:0184 60000:0186

System ROM U63 System ROM U63 F400:0000 ROK F400:0000 ROM F400:2000 ROM F400:2000 ROM
Windisk ROM WHWindisk ROM
F400:6000 ROM F400:6000 ROM Option ROM U62 Option ROM U62

RAM segment address for ROM Length of RAM segment in bytes RAM segment address for ROM Length of RAM segment in bytes RAM segment address for ROM Length of RAM segment in bytes
RAM segment address for ROM Length of RAM segment in bytes
RAM segment address for ROM Length of RAM segment in bytes RAM segment address for ROM Length of RAM segment in bytes

F400:A000 F400:0000 F400:2000
F400:40006 (30H) F400:6000 F400:8060

All accesses

to the Winchester disk controller RAM area are through

the segment pointer at 0000:018CH.

Because

the :Winchester

disk

controller ROM is located at segment OF400H, the segment pointer

location can also

be reached

from

the code

segment

at address

OF400:C1iSCH.

TM

The segment pointer allows the Winchester disk controller RAM area to

be located

anywhere,

but

care must be taken if the area is moved

after the system is initialized.

If this

is done,

the Winchester

disk system must be reinitialized with the Winchester disk option

call "60" (Initialize System) after the RAM area is moved and the

vectors

are set to the new values.

To do this, pass the new segment

address in DS and OOOCH as the pointer to

the

initialization

data.

(See paragraph 4.14.18.1.)

4.14.4 Power-up Testing

To determine that the Winchester disk controller is working properly,

it is tested by its own internal diagnostics and the RAM diagnostics.

Failures

are reported as system errors lixx, where xx indicates the

error received.

If an error

occurs,

control

is returned

to the

system ROM.

1

TECHNICAL REFERENCE

BEVICE SERVICE ROUTINES

4.14.5 Booting from the Winchester

After

the

power-up testing of the controller

completes,

the

Hinchester goes through the boot sequence.

Only drive 4 (E: for MS~-

DOS) can be booted.

If drive 5S is connected to the controlier,

it

can be used for data only.

First,

the boot procedure polls the drive for the ready condition.

If the drive is not ready (as would be true after the power is turned

on), the ROM routines wait approximately 30 seconds for the ready

condition.

If the user presses the ESC key at any time during this

wait, control is returned to the system ROM, and the diskette drive

conducts the initialization boot.

4.14.6

Error Recovery

The error recovery procedures depend on the

controller errors

(time-outs),

the controller

retries are attempted.

A hardware error code

disk DSR.

error.

For

is reset,

is returned

hardware and ~n7"o
from the

For disk retries code.

drive errors (seek incomplete, write fault, and so on), no

are reported,

and

the disk DSR returns the hardware error

Read Data operations have

two

types

of errors:

correctable and

uncorrectabie.

If the data is correctable, it is corrected, and no

error is reported directly.

A DSR Read Soft Retry Status reports

this error.

:

ip

For uncorrectable errors, a "restore" is done before each retry.

If

the retry does not succeed, the data buffer is filled; with CCH when

the data cannot be read at all, or with the uncorrected data if the

data can be read but contains an ECC error.

For other operation errors, a "restore" is placed before each retry.

4-66

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.7 Error Reporting

The disk boot can reported

DSR is report by the

capable of reporting only a few errors.

The power-up

more but not all. Table 4-13 is a listing of errors

disk controller and the codes reported by the DSR.

Table 4-13

Winchester DSR Error Codes

Reported Error
20H Hardware failure 20H Hardware failure 20H Hardware failure 20H Hardware failure 20H Hardware failure L0H CRC error 10H CRC error O2H Disk format error 04H Record not found
40H Seek error
OOH No error (on RETURN) 10H CRC error (soft stat) O1H Command error OC2H Bisk format error CiH Command error O1H Command errorx C2H Disk format error Oi1H Command error C1iH Command errors Oi1H Command error*x 20H Hardware failures 20H Hardware failurex 20H Hardware failure*r

Controlier

Error

CiH No index detected O2H No seek complete O3H Write fault O4H DRIVE NOT READY during operation O6H Track O06 not found 10H ID field read error 1iH Uncorrectable data error i2H Address mark not found L4H Record not found
15H Seek error
18H Correctable data error 18H Correctable data error 1SH Bad track flag detected TAH Format error
1CH ftilegal access `to &lternate track 1DH fllegal alternate track for format LEH Expected alternate track, isn't 1FH Alternate track = bad track 20H Invalid command
2iH <Iliegal disk address 30H RAM diagnostic failure 31H Program memory checksum error 32H ECC diagnostic failure

* This error should never be encountered by the DSR.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

The errors that can be reported during boot are the controller errors given in Table 4-13 and Table 4-14.:
Table 4-14 Displayed Error Codes
All errors have the following message displayed: *x SYSTEM ERROR - Lixx **
Hhere xx = the extended error

Extended Error

Explanation

33H 4CH 41H
42H 43H 44H
4SH 46H 47H 48H 49H 4AH
4BH
4CcH 4DH 4EH 4FH
S1H
52H S3H S4H
SSH S6H 57H 58H S9H

Status error on REQUEST SENSE STATUS command

Time-out

while waiting for WRITE DATA mode

READ

MODE

while waiting for WRITE DATA mode

COMMAND MODE

while waiting for WRITE DATA mode

STATUS MODE

while waiting for HRITE DATA mode

WRITE

MODE

Time-out

COMMAND MODE

while while while

waiting waiting waiting

for READ for READ for READ

DATA DATA
DATA

mode mode
mode

STATUS MODE

while waiting for READ DATA mode

WRITE

MODE

while waiting for COMMAND mode

READ

MODE

Time-out

STATUS MODE

while
while
while

waiting
waiting
waiting

for COMMAND mode
for COMMAND mode
for COMMAND mode

WRITE

MODE

while waiting for STATUS mode

READ

MODE

while waiting for STATUS mode

COMMAND MODE

while waiting for STATUS mode

Time-out

while waiting for STATUS mode

Disk not ready

CRC error

Seek error Sector-not-found error Disk (unknown) error (controller

failure)

Not a TiI-system disk

Disk format error

Bad boot sector CRC or bad controller

System ROM version doesn't support Winchester

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.8

Hardware Interface Routines

This

interface

to the Winchester disk system implements additional

functions in a straightforward way. The calls provide a method of

interfacing with the hardware that is almost hardware-independent.

To use this interface, do a long call through

the RAM area of the Winchester disk controller

for

the operation

in register

AH.

Other

explained with each operation.

the first doubleword in ROM. Place the opcode register usages are

For more information, refer to paragraph 4.4.4 and to the table in Paragraph 4.5.2.

The programming steps required to do the long call are given below.

WINROM DD

o0oco00cse

*;LOCAL PLACE TO STORE VECTOR 720 ROM.

> The next steps get the entry vector for the Winchester ROM ; code from the ROM data area and put it into local storage

PUSH ES

XOR AX,AX

MOV £ES,AX

.

MOV ES,ES:WORD PTR 18CH

LES AX,ES:DWORD PTR o0oCSo

MOV WORD PTR WINROM+2,ES

MOV WORD PTR HINROM,AX

POP ES

;SAVE ES ;SET ES TO 0000H
;GET WINCH RAM SEGMENT INTO ES ;GET VECTOR FOR WINCH ROM ;SAVE IN OUR DATA AREA : ;RESTORE ES

; The following steps access the Winchester ROM functions ; after the above initialization is completed

MOV AH,OPCODE CALL WKINROM

*SET OPCODE INTO AH :GO DO THE OPERATION

The following entry point.

paragraphs explain the operations available from this

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.8.41

Initialize Winchester Disk System.

ie

Opcode:

AH = OOH

re
d

Entry:

DS:SIk = POINTER TO DATA BLOCK

Offset

Value/Use

OOH 02H 03H 04H OSH CO6H
o8H OAH OBH

(Word) (Syte) (Byte) (Byte) (Byte) (Word)
(Word) (Byte) (Syte)

Sector size in bytes Track size in sectors Number of surfaces Number of cylinders on disk Number of error retries Reduced write current cylinder Write precomp start cylinder Step option Error-burst corrected length

Exit: Used:

AL = Error code AX, BX

This operation tells the disk subsystem the type of Winchester drive

being used.

It sets the hardware and software data structures so

that a user can simply call the DSR to use the drive.

4.14.8.2 Check Winchester ROM Version.

Opcode:

AH = O1H

Entry:

None

Exit:

AX = BCD ROM version number

:

Used:

AX

Example:

If ROM is V1.23, then AX returns 0123H

This operation returns the Winchester ROM version often useful for software-compatibility checks.

number.

This is

1 Taal
TECHNICAL REFERENCE

Tr,
DEVICE SERVICE ROUTINES,

4.14.8.3 Request Controller Error Sense.

Opcode: Entry: Exit:
Used:

AH = 62H DS:SI = Address of AL = Error code Z = Set if no error Data block contains AX,CX,S1I,DfI

6-byte what

data block controller

returned.

This operation gets error information

an error code.

If the controller

error codes are returned.

from the controller hardware is broken,

and returns appropriate

4.14.8.4

Send Winchester Controller Command.

Opcode: Entry: Exit;
Used:

AH = 03H BDS:SI = Address of 6-byte data block containing command and other data (see hardware spec) AL = Error code if Carry flag is set Z = Set, C = Reset if no error Z = Set, C = Set if time-out Z= Reset, C = Set if improper controller mode AX ,cCxX,SI

This operation sends a command to the controller. for a response.

{it does not wait

4.14.68.5

Get Data From the Winchester Controller.

Opcode: Entry: Exit;
Used:

AH = 04H ES:DI = Address of buffer to receive data CX = Number of bytes of data to get AL = Error code if Carry flag is set 2 = Set, C = Reset if no error Z= Set, C = Set if time-out Z2 = Reset, C = Set if improper controller AX ,CX, DBI

mode

This operation waits for the controller to provide data and then puts

it into the user's buffer.

The operation waits about 1 second before

returning a time-out error.

If the controller is in the command

state or the status state, an appropriate error code is returned.

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.8.6

Write Data to the Winchester Controller.

Opcode: Entry: Exit:
Used:

AH = OSH ES:DI = Address of data buffer to transmit CX = Number of bytes of data to put AL = Error code if Carry flag is set Z = Set, CC = Reset if no error Z= Set, © = Set if time-out Z = Reset, C = Set if improper controller AX,cCxX,DI

mode

This operation waits for the controller to ask for data and then

writes from the user's buffer to the controller.

The operation waits

about

1 second before returning a time-out error.

If the controller

is in the command state or the status

state,

an appropriate

error

code is returned.

4.14.8.7

Get Status From Winchester Controller.

Opcode: Entry: Exit:
Used:

AH = O6H

None

AL = Error code if Carry flag is set

Z= Set,  = Reset if no error

Z= Set, C

Set if time-out

Z= Reset, C = Set if controller mode is

2 = Reset, Cc

Reset if status indicates

has an error

«

AX ,CX

not status controller

This

operation waits for the status return from the controller.

The

operation waits about 1 second before returning a time-out error.

If

the controller is in the command state or the data-transfer state, an

appropriate error code is returned.

TECHNICAL REFERENCE

;

DEVICE SERVICE ROUTINES

4.14.8.8 Get and Compare Data From the Winchester Controller.

Opcode: Entry: Exit:
Used:

AH = 07H ES:DI = Address of buffer to receive data CX = Number of bytes of data to get AL = Error code if ¢C flag is set Z = Set, C = Reset if no error
Z= Set, C = Set if time-out Z = Reset, C = Set if improper controller mode Z2 >= Reset, C = Reset if data does not compare;
if no compare, DI to the miscompared data AX,CX,DI

This operation waits for the controller

to provide data and

then

compares it with the data in the user's buffer.

If the data does not

compare, the data pointer (DS:DI) is set to point at the data address

that

does

not

compare.

After a wait of about 1 s, the controlter

returns a time-out error.

If the controller is in the command

state

or the status state, an appropriate error code is returned.

4.14.8.9

Enable Data and Status Interrupt From Controller.

Opcode:

AH = O8H

Entry:

None

Exit:

None

Used:

AX

4

This operation

enables

the Winchester controller interrupts to the

system bus.

However, this operation

does not enabie

the system

interrupts

from

the interrupt

controller

or from

the processor

interrupt.

4.14.8.10

Enable Status Interrupt From Controller.

Opcode: Entry: Exity: Used:

AH = OSH None None AX

This operation system bus. interrupts from interrupt.

enables the Winchester controller

However,

this operation does

the interrupt controller or

interrupts

to the

not enable the system

from the processor

TECHNICAL REFERENCE

ba}
DEVICE SERVICE ROUTINES

4.14.8.1141 Disable
Opcode: Entry: Exity: Used:

Data and Status
AH = CAH None None AX

Interrupt

From. Controller.
* #
:

This operation disables the Winchester controller interrupts to the

system bus.

However, this operation

does not disable

the system

interrupts

from

the interrupt

controlier

or from

the processor

interrupt.

4.414.8.12 Poll for Controller Request.

Opcode: Entry: Exit:
Used:

AH = OBH None Z= Set if request is not active Z = Reset if request is active AX

This operation determines when the controller is ready for command, status, data in, or data out.

4.34.8.13

Format a Track.

Opcode:

AH = OCH

Entry:

DL = Drive number (4,5)

DH = Interleave factor

TM

CX = Logical track number to format

The drive parameters must have been set using operation Oo.

Exit:

AL = Error code, 0 if OK

CX = Track number of error, if there is an error

Used:

AX,BX,CX,DX,SI,bDI

This operation formats a track on the Winchester disk. The drive

parameters must be set up by a call to operation 0. Multiplying

the

cylinder number by the number of surfaces, then adding in the surface

number yields the logical track number. The interleave factor is

typically 12 or 13 for optimum use of the DSR in reading sequentiai

sectors.

The error code returned is the controller error code with

extentions for such conditions as time-outs.

This operation always

does

a RESTORE

operation before the track format, so it is slow to

format a disk.

.

4-7 4

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.89.14 Foarmat an Alternate Track.

Opcode: Entry:

AH

ODH

DL

Drive number (4,5)

DH

Interleave factor

CX = Logical track number to format

BX = Logical track number of alternate

The drive parameters must have been set using operation Oo

Exit: .

AL = Error code, 0 if OK

CX = Track number of error, if there is an error

Used:

AX,BX,CX,DX,SI,D!I

Formatting routines use this operation to map a bad track to an

@liternate track.

The drive parameters must be set up by a call to

operation 0. Multiplying

the cylinder

number

by the number

of

surfaces,

then adding the surface number yields the logical track

number.

The interleave factor is typically 12 or 13 for optimum

use

of the DSR in reading sequential sectors. The error code returned is

the controller error code with extensions for such conditions as

time-outs.

4.14.8.15

Format a Track as Bad.

Opcode:

AH = OEH

Entry:

DL = Brive number (4,5)

DH = Interleave factor

A

CX = Logical track number to format

:

The drive parameters must have been set using operation oO

Exit:

AL = Error code, Q if OK

_

CX = Track number of error, if there is an error

Used:

AX,BX,CX,DX,S1I,DI

This operation formats a defective track so that read

operations

do

not miss

the defect.

The drive parameters must be set up by a call

to operation 0. Multiplying the cylinder number

by the number

of

surfaces,

then adding the surface number yields the logical track

number.

The factor is typically 12 or 13 for optimum use of the DSR

in reading

sequential

sectors.

The error code returned is the

controller error code with extentions for such

conditions

as

time-

outs.

This operation always does a RESTORE operation before the

track format.

4-75

TECHNICAL REFERENCE

DEVICE SERVICE ROUTINES

4.14.8.16

Check the Track Format.

Opcode:

AH

OFH

Entry:

DL

Drive number (4,5)

DH = Interleave factor

CX = Logical track number to check

The drive parameters must have been set using operation 0.

Exit:

AL = Error code, G@ if OK

Used:

CX = Track number of error, if there is an error AX,BX,CX,DBX,SI,DI

This operation checks a track for proper not report errors for tracks that have or alternate tracks unless the ID fields

format. This routine does

been formatted as bad tracks

are incorrect.

The drive

parameters

must be set up by a call to operation Oo. Multiplying the

cylinder number by the number of surfaces, then adding

the surface

number,

yields

the logical track number.

The interleave factor igs

typically 12 or 13 for optimum use of the DSR in reading sequential

sectors.

The error code returned is the controller error code with

extentions for such conditions as time-outs.

4.14.8.17

Format a Winchester Drive.

Opcode:

AH = 10H

Entry:

DL = Drive number (4,5)

DH = Interleave factor

4

CX = Logical track number to begin format

The drive parameters must have been set using operation 0.

Exit:

AL = Error code, 0 if OK

"

CX = Track number of error, if there is an error

Used:

AX,BX,CX,DX,SI,DI

This operation formats a Winchester drive. The drive parameters must

be set by a call to operation 0. Multiplying the cylinder number by

the number of surfaces, then adding the surface number, yields the

logical track number.

The interleave factor is typically

12 or 13

for optimum use of the DSR in reading sequential sectors.

The error

code returned is the controller error code with extentions

for such

conditions as time-outs.

If an error occurs during the drive

formatting operation, register CX returns the track in error.

If the

formatting operation must be completed, increment

the track number

and cali the routine again. This could be necessary, for instance,

if a drive defect falis directly on an address mark or ID field.

TECHNICAL REFERENCE

ASSEMBLY DRAWINGS AND LISTS OF MATERIALS

Section 5

ASSEMBLY DRAWINGS AND LISTS OF MATERIALS

This section

contains

assembly

drawings

and lists

of

applicable to the Texas Instruments Professional Computer.

materials

Title

TI Drawing
No.

Page No.

Motherboard Assembly Alphanumeric CRT Controller Board Option RAM Board Ic, Numeric Coprocessor Power Supply Assembly Main Enclosure Keyboard (Domestic) System Assy,Domestic System Assy,International Graphics Video Controller Electrical Pin Configuration Communication Card Cable Assembly (motherboard
to Floppy disk) Option Kit, RAM Chips Video CRT Controller Cable, Video Monochrome Cable, Parallel Printer Wire List, Parallel Printer Color DBisplay Unit Winchester Disk Controller Outline Specification, Option Soard Configuration, Diskette Brive Power Cord Ac Cable Assembly, Baisy Chain Cable Assembly, Radial Cable Assembly, (motherboard
to external floppy) Cable Assy, External Drive Speech Electronics Telephone Electronics 256/512 RAM Expansion 256 RAM Expansion Speech/Telephone Assembly Keyboard, Low Profile Communications Loopback Plug

2223003 2223009 2223015 222i021 2223037 2223038 2223033 2223050 2223051 2223061 223082 2223094
2223037 22230939 22231006 2223105 2223106 2223107 22232139 2223220 2223231 2223273 0996289 2232326 2232327
2232329 2232332 2232373 2232463 2234243 2234246 2234261 2230528 22073985

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2223093-9001

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PART NUMBER

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12/14/83

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PART NUMBER

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DESCRIPTION Scseeseescacces cecee tooo ssa e's
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DESCRIPTION. Se@* ea eee eee Be BRP ESE ESSERS EEE EP TEESE
MOTHERBOARD - PEGASUS = AUTO INSERT

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O00001.000 06972900-7420
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00003.000 0972900-74T4
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DESCRI BVION Seas «esa ale estate os « a eeate aoa cee ote
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DESERIPTION ewe ccc nnccceanecsenseeenceses
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12/14/83

PART NUMBER

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2223003-5001

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ITEM.

QUANTITY.

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List of Materials

DESCRIRU[ONesseeeca ccc cca s os aslo as eo enanee
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List of Materials

DESCRIPTION escccecccecsesecesecusneceane
MOTHERBOARD = PEGASUS - AUTO FNSERT

COMPONENT. 0972924-O0018
O9T 2946-0053 0972900-7400
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List of Materials

DESCRIPTION ews cece cconseaaneeseeseeesess
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EA

V-LIST=S04 BURN~TN

U36

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SUBSTITUTE FOR ITEM 23

V-LIST-$04 BURN-IN

ICs lS04,HEX ENVERTERS

EA

V-LIST-LS$04 . SURN-IN U3T

V-LESF-LS04

RURN-IN

SUBSTITUTE FOR ITEM 24

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BURN- IN

ICeLSL74,HEX,D-TYPE REG W/COMMON CLR

FA

V-LIST-LSL7T4& AURN-IN ULA

V-LEST-LS174 BURN-IN

SUBSTITUTE FOR ITEM 26

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IC, S174,HEXsFLIOP-FLOP,STINGLE RATL OUTPUT EA

V-LIST-5174 BURN-IN

5-76

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PART

HUMA ER

2223009-S500!

REV
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ITEM,
OL24A O124R 0125 OL25A 012538

QUANTITY,
COO00.900

UESCRIRTING

Mi. ace ccc

ALPHA CRT CONTROLLER

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- AUTON ENSERT

ee

COMPONTANT..
22109759-0001

NESCRIPUION

ce sceccace

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49

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V-LEST-SI57 SURN-IN SUBSTITUTF FOR {TEM 49 V-LEST-S157 AURHN-IN

LM
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12/14/83

PART

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REV
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ITEM,
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00091.000

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ALPHA CRT CONTROLLER - SPARFS

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12/14/43

PART NUMBER

REY

2223915-0001

J

ITEM. 00392

QUANTITY, REF

D004 DOO4GA

00018.°00

90045

NO04C 0004N

0009

REF

0010

PEF

n101 7999

COO001.C90 ocdn0.500

List of Materiais

NESCRIPIION

es eccee

FXPARSTON RAM

ee ccareee

eG eee cee seen

COMPONENT. . 222301L7-COO0l

NESCR LETHON

So ates sa ae es ae ae nate ca sce a

eee

SCHEMATIC, EXPANSION RAM

Bia!
EA

P71OLAA-O012

SOCKET. DIP,16-PINS,L OW PROFILE

FA

SEE T =-I DRAWING

AULOsXULL»,XUL2 »XUL3,XU14

SFE T =I MRAWING

XUL%, XU16, XULT,XU1LAXU,LG

SEE T -1I DRAWING

XUZ0 AUF Le XU? -XUFZF, XUF4

SEE T <I DRAWING

XUZ2Z 5 eXU76, KU2T

SEE T -f DRAWING

099413196-f00!1

PROC.» SITF/DATE COME AND SFREALTZATINN

FA

22232 72-N001

SPEC UNIT TEST-EXPANSION RAM

FA

22?%3015-5001

EXPANSION RAM -AUTO ITNSERT

FA

1254-3016-042

9239999-9999 COST, SHRINKAGF

FA

12/14/83

PART MNUMAFR

PEV

22233915-91992

J

ITEM,

QUANTITY.

0092

REF

0003

90099 .000

000 3A

00038

0004

00018.000

00044

90046

H004C

9004N

0009

REF

0010

REF

NESCR

LPT

Ohi caret, so etete ats e's as ae atete tata a ee ate a es

EXPANS TON RAM (12AK}

TM*

COMPNNENT.. 222301 7-0001 7211118-0004 2210188-0012
0994396-COO0l

DESCRIPIAOH

Scaece sccuese

oats

ce ces cso

SCHEMATIC ,EXPANSTON RAM

UM
FA

ICs64K-BFT NYNAYTC RAM,LSONS TASROW

FA

TMMS416-4-15NL

HLO ~,ULL UL2,UL3.U1L4,0U15,016

T4$416-4-L5NL

UL? ,UI8

TMS416-4=-15NL

SOCDIK P, E L6-T PIN» S,LOW PROFILE

SEE T ~T DRAWENG

XULOse XU1 1, XUL2--¢XU1M3U,L4

SEE T -I NRAWING

XULS»X XULU7,LXG ULAA , , XUL9

SEF T ---T NRAWING

XRU20 eXUZLegX XUU 23,22 KUNIS

SFE T -1f DRAWING

XU2S_¢ XU76, XU2ZT

SFE T -1t DRAWING

PPNC.s STTE/DATE CODE AND SERTALE7 ATION

2223277?~-0001

SPEC ,UNTT TESTE XPAN STON RAM

0101 9999

OO001.C00 90000.500

2223015-5002
0239999-9999

EXPANSTON RAM (128K) -AUTO 17254~-3018-006
COST, SHRINKAGE

INSFRT

12/14/83

PART NUMBER

REV

2223015-0003

J

List of Materials
DESCRIPTION cccccessvcccaneveseccesuceves EXPANSION RAM (192K)

"ITEM.
oo02 0003 QO03A 00038 0003C 0004 OO04A GO04B 0004C 00040 0009 00LO O101 9999

QUANTITY.
REF O0018.000
OOOL8.000
REF REF 00001.000 0C000.500

COMPONENT...
222301 7-0001 22111L8-0004
221t0188-00L2
0994396-000!1 22234272-0001 2223015-5003 9239999-9999

DESCRIBRWIUN, soc

as 49 so a6 0.6 tates ss es a4 6 =o

UM

SCHEMATIC, EXPANSTON RAM

FA

IC, 64K-R1T DYNAMIC RAM,LSONS TA/ROW

EA

TMS 416-4-L5NL

VIO ULL, UL2Z,UL3-U14,U15,U16

TMS 416-4-S1NL

G17 ,ULa,UL9,U20 ,U21,U22,U23

TMHS416---4-51NL

U24,U25,U26,U2T

TMS 416-4-15NL

SNC KET,OIP,16-PINCSLOW PROFILE

EA

SEE T -1f ORAWING

XVLOSXX UL2U , L XU1L 3,x, XUL4

SEE T -I ARAWING

XU15 eXUL6,XXUULLA,TX,ULD

SEE TF -I DRAWING

XUZO eXUZL eXUZ2 »XUZ3, XU24

SEE T -I DRAWING

XU25 9X26, XU2T

SEE T -I DRAWING

PROC. + STTE/DATE CODE AND SERIAL TZATION

EA

SPECeUNIT TEST"FEXPANSTON RAM

EA

EXPANSTON RAM (192K}-AUTO INSERT

EA

1254-3026-008

COST. SHRINKAGF

EA

12/14/83

PART NUMBER

REV

222301 5-0004

J

DESCRIPTION secccccccceccenecescseceesees EXPANSION RAM (192K) COMPLETE

ITEM.
0602 0009 O010 O1o1

QUANTITY.
REF REF REF OC001.000

COMPONENT...
222301 7-O001 0994396-0001 2223272-0001 27223015-5004

DE SOR. PL LONG ws e-as's sc 5.4.00 o°S's 6 0 & o.9°4 os26 eee

LM

SCHEMATIC,EXPANSTON RAM

EA

PROC., STITE/BDATE CODE AND SERTALTZATTON

FA

SPECeUNIT TEST~EXPANSTON RAM

EA

AUTO INSERT TAPE FOR-0004

FA

1254-302 2-000

6-31

12/14/83

PART NUMBER

REV

2223015-5001

J

List of Materials

NESCRIPT ION

s oes occ ees so oes *@@¢ #6646864 Ff @G &

EXPANSION RAM ~AUTO INSERT

ITEM.
0001 0003 OOO3A 0005 OCOSA 0006 OOCGA 00068 OO0OT OOOTA 000768 0008 OOOaA

QUANTITY.
00001.000 00009.000 00002.000 00010.000
00011.900
00902.000

COMPONENT...
2223016-0001 2211118-0004 2220360-0002 0972763-0001
0972763-0025
0972924-0018

DESCRIPLIViiveceses en steececcect fess sas a4 ¢ 5 uM

PWR,FXPANISON RAM

EA

1669-0000-000

TC ,64K-BTT DYNAMIC RAM,L5ONS TA/ROW

EA

TMS416~4-15NL

UL, U2 ,U3 .U4,0U5 U6 UT U8, U9

TMS 416-4-15NL

IC, OCTAL DRAM DRIVER, 3-STATE OUTPUTS

EA

SEF TI- DRAWING

uU26,U29

SEE Ti- DRAWING

CAPACTTOR, .OOLUF SOV FX CERAMIC OTEL

EA

COR CA-COZZ5ULO2Z2Z1LOOA

C1,C2903,04,05,C6,C7268,C9

COR CA-CO2ZZ5ULO2Z100A

C10

COR CA-CO2ZZSULO2ZZLOOA

CAPACTTOR, .LOUF SOV FX,CERAMIC DIFL

EA

COR CA~-CO3ZSULO4SZOSOA

C11,12,C13,C14,015,C16,CiT

COR CA-CO375U10045Z0A

C18,C19,C20,C21

COR CA-CO3BZSULO4SZO50A

CAP FIX TANT SOLIN 6.8 MFP 10 2 35 VOLT FA

QPL ~M39003/1-2304

C22,023

QPL ~439003/1=-2304

12/14/83

PART NUMBER

REV

2223015~-5002

J

ITEM.

QUANTITY.

oo0ol

00001 .000

0003

00009.000

00034

0005

00002.000

OOOSA

0006

0¢c010.000

COO6A

OOO6A

0007

900t1.000

OOOTA

oooTs

0008

00002.000

OOOS8A

DESCRIPTION. Se ee BaSe PSE ERB ERB EET EEE ERE SE ES
FXPANSION RAM (126K)-AUTO INSERT
Ta.

COMPONENT. .«

DESCRIPTION eccwacvscvecceeetecssaseezeoas

Wh)

2223016-0001 2211118-9004 2220360-0002 0972 763-0001
0972 763-0025
O9T 2924-0018

PWB, EXPANSION RAM 1669~-0000-000

TC ,64K-BIT DYNAMIC RAM,LSONS TA/ROW

TM$416~-4- L5NL

UL,U2,U3,04,U5,U6,UT,U8,US

TTMMS416-4-15NL

IC, NCTAL DRAM DRIVER, 3-STATE OUTPUTS

SEE TI~ DRAWING

U28,U29

SEE TI- DRAWING

CAPACITOR, .OOLIUF SOV FX CERAMIC DIEL

COR CA-COZZ5ULOZZ100A

C1,02,3 ,4,65,C06,C7,C8A,C9

COR CA-CO27TSULOZZ100A

£10

COR CA-CO2ZSULOZZ1LOOA

CAPACTTOR,.~LOUF SOV FX,CEPAMIC OTEL

COR CA-CO375U1047050A

C11,Cl2,C1L3-C14,C15,C16,C17

COR CA~C03705 42U01 50A

C18,C19,C20,C21

COR CA=-CO375U1047Z050A
CAP FIX TANT SOLID 6.8 MFD 10 2 35

VOLT

QPL

-M 39003/ 11-2304

C22,C23

QPL

-M399003/1-2304

12/14/83

PART NUMBER REV

2223015-5003

J

ITEM.

QUANTITY.

Oool

90001.000

0003

006009 .000

OOO3A

0005

00002.000

OO0SA

0006

00010.000

DOO6A

00068

oooT

00011.000

OOOTA

00078

0008

00002.000

OOOBA

12/14/83

' PART NUMBER

REV

222301 5~5004

J

ITEM.

QUANTITY.

cool

00001.006

0003

00027.000

00034

00038

0003C

0003)

0005

00002.000

COOSA

0006

oco10.000

OO06GA

Q006A

oocoT

00011.900

OOOTA

00076

0008

00002.000

OOOBA

List of Materials

DESC RIRT LION «sso aes <«s SS BSB ERB RB ERG Re HReRC PRP REB EEE SE
EXPANSION RAM (192K)-AUTO INSERT

COMPONENT... 2223016-000i
2211118-0004

DESCRIPT LONescncccanancavccesentcecnssece
PWB EXPANSION RAN 1669-0000-000 IC, 64K-BIT DYNAMIC RAM, LSONS TA/ROW

uM
EA
EA

TMS 416-415NL

U1L,U2,03,U6,U5,th6,UT 8 ,th

IMS416---4=-L5NL

2720360-0002

ICeNCTAL DRAM DRIVER, 3=-STATE OUTPUTS

EA

SFE TI= ORAWENG U28,U29

SEE TI- DRAWING

0972 763-0001

CAPACTTOR, -<OCOLUF SOV FX CERAMIC OTEL

EA

COR CA-CO2Z5UL 02Z100A

C1,02-03,-04,C5,-C6-CTCHACd

COR CA-COZ275ULO2ZZ100A

c10

COR CA=COZZTSULOZZIOOA

0972 763-0025

CAPACTTOR,-LOUF SOV FX, CERAMIC DITEL

EA

COR CA-f O3 Z5ULO47050A

CLL -C12,C13,C14,C15,C016,CtT

COR CA=-COIZSULO4S72050A

C18,ci9,C290,Cc7t

COR CA-COSZ5SULO4SZO50A

0972924-0018

CAP FIX TANT SOLID 6.8 MFN 106 235 VOLT A

QPL

-439003/1-2304

C22,C23

QPL

~439003/1-2304

DESCRIPTION...» SPECS REeBPESCE BeBe
AUTO INSERT TAPE FOR-0004

ERE RHE EAH EEE

COMPONENT... 2223016-0001 2211118-0004
2220360-0002 0972 763-0001
0972 763-0025
0972924-0018

DESCR LEVON

ee as sae oe

ee oe oe ee ee eee

UM

PHB »/EXPANSION RAM

EA

1669-0000-000

1C,64¢K-BIT DYNAMIC RAM,150NS TA/ROW

EA

THS$416-4~15SLNL VUi,eU2-U3,U4,05,U6U,aU.TU9

TMS 416-4=15NL

ULO,ULE,ULZ,UL3,U14,U1L5,U16

TMS 416 4-1-5NL

ULT .U1L8,U19, 020,021,022 2023 TMHS416-4-15NC

U24,U2 U265, ,U2T

TM4$416-4-51NL

ICeNOCTAL ORAM DRIVER, 3-STATE GUTPUTS

EA

SEE Ti- DRAWING

28 ,U29

SEE TI-~ DRAWING

CAPACITOR,.OOLUF SOV FX CERAMIC DIEL

EA

COR CA-CO2 25UL027 1OOA

CL»C2,C03,C4,05,C6,CT,CC89

COR CA~-CO2ZTSULO2ZZ1LOOA

Clo COR CA=CO2ZZSULOZZLOGA

CAPACTTOR,.LOUF SOV FX,CERAMIC OTEL

EA

COR CA-COSZ5SULO4STOSOA

C11 -eCt2-ClL3eC14-C15,C16,C17

COR CA~CO37ZSULO4Z050A

C18eC1l19,C20,C2i

COR CA-COSTSULO4SZOSOA

CAP FIX TANT SOLIO 6.8 MFO 10 % 35 VOLT EA

QPL

-439003/ 11-2304

C22 ,C23

QPL

-439003/1~-2304

12/14/83

PART NUMBER

REV

2223015-8001

J

ITEM.

QUANTITY.

0001

COOO1L.000

List of Materials

DESCcR v ceI nccP eceT eccT esscO seeN ecee seese EXPANSION RAM = SFARES

COMPONENT... DESC covR es cI scnP ssccT eseI sccsO essN sccuce UM

2223015-0001

FXPANSTON PAM

FA

1254-3015-042

12/14/83

PART

NUMBER

2223015-8002

REY
J

NESCRIPTION ccc escccec acc seeeesesseassese
EXPANSION RA" (128K) - SPARES

OO00L

OCOOL.O0G 22273015-0002

EXPANSION RAM (128K)

EA

1254-3017+906

12/14/93

PART

NUMBER

2223015-8003

REV
J

DESCRIPTIONs coccccuccccccccccccccccccece
EXPANSTON RAM (192K) --- SPARES

ITEM.
OOOl

QUANTITY.
00001.900

COMPONENT...
2223015-0003

DESCRIPTION

ceaeceeaeces secc ceecsices sa no's o's UM

EXPANSION RAM (192K}

EA

1254-3019-008

12/14/83

PART

NUMBER

222391 5-8 004

REV
J

DESCRIPLINN@

cesses coe as ca can ca aca oo 6a oc -

RAM,EXPANSION £92K COMPLETE/SPAPES

TTEM.
0001 0002

QUANTITY.
COOOL.900 REF

COMPONENT...
222301 5-0004 2231993-0001

DESCR EPT TON oc cer ccwccccccceasccevscceses
EXPANSTON RAM (1L92K} COMPLETE 1294-30271-023 SERVICF PACK INDE X-RMR

uM
EA EA

o-34

ee

222102)

oath

APPLICATION

LEVEL 2 REVISIONS

5962 2500

SCOPE:

06

THIS SPECIFICATION COVERS THE REQUIREMENTS FOR AN N-CHANNEL, DEPLETION

LOAD MOS NUMERIC DATA PROCESSOR INTEGRATED CIRCUIT WHICH EXECUTES TRANS-

CENDENTAL FUNCTIONS AND PROVIDES ARITHMETIC AND LOGICAL INSTRUCTION

SUPPORT FOR NUMERIC DATA.

ABSOLUTE MAXIMUM RATINGS: SEE TABLE !.

APPLICABLE DOCUMENTS:

WHERE THIS SPECIFICATION REFERS TO ANOTHER COCUMENT, THAT DOCUMENT IS

OF THE ISSUE IN EFFECT ON THE DATE OF INVITATION TO BID OR REQUEST FOR

PROPOSAL. REFERENCED DOCUMENTS APPLY TO THE EXTENT SPECIFIED HEREIN.

THIS SPECIFICATION GOVERNS WHEN A REFERENCED DOCUMENT CONFLICTS.

%,

CAUTION: @) STATIC SENSITIVE
ELECTROSTATIC DISCHARGE CAN DAMAGE THIRD COMPONENT. PRODUCT MUST BE SHIPPED IN ANTISTATIC CONTAINER AND MAINTAINED IN ANTISTATIC PACKAGING, INCIVIDUAL DEVICES SHOULD 8-- HANDLED ONLY AT STATIC-FREE WORK STATION,

REV STATUS OF SHEETS

DESO DERE reve seer {i {213 Ja[5 [6]7[8[9frofiaprzirsfiafis|hiPej|iz]

7B

< TEXAS INSTRUMENTS

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(TOP VIEW)

GND

1]

{A14) AD14 2

(A13) AD13 3

(Aj2) AD12 4

(Aq1) AD)]

5

(Ajo) ADio UL} 6

(Ag) ADg

7

(Ag) ADg

8

AD?

9

Ag

ADs
AD4
AD3
AD2

AD}

ADo NC NC CLK

GND

VCC
ANS
Al6/S3 A17/S4
A18/S5
A19/S6 BHE/S7
RQ/GT]
INT
RQ/GTq
NC
NC
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FIGURE 2

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TEXAS INSTRUM ENTS
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2221021

i

DC CHARACTERISTICS (Ta = 0 °C TO 70 °C, Vcc = 5 V + 10%)

vin[IINNPPUUTT LiOWonVOvLoTATGaEceE [You [OOUUTTPPUTUTLHOIWGVHOvLoTUAGTEASE
POWER SUPPLY CURRENT

| a el hele [Tow =-400vA
0 V's Vin < Wee

cVncL [C[CLLOOCCKK IINNPPUUTT LHIOGWH VOvLTAGEoLTAgE[

CAPACITANCE OF INPUTS

fo = 1 MHz

Cio |CAPACITANCE OF I/0 BUFFER

fc = 1 MHz

(ADo-15, Ajg-A19, BHE, S2-So,

RQ/GT) AND CLK

CouT [CAPACITANCE OF OUTPUTS BUSY, INT

fo = 1 MHz

TABLE II

C

AC CHARACTERISTICS (Ta = 0 °C TO 70 °C, Vcc = 5 V +

TIMING REQUIREMENTS

"| SYMBOL CLK CPYACRLAEMETPEERRIOD

a TEST CONDITIONS

ats Se).

PTeLCH {f CLK LOW TIME f

23 TELL) =15

CLK HIGH TIME

eae E17Shrcuc eee

rretacti|CcLKreRFIASELLTTIIMEME --------~=*dFsrMraoSVMTOiIOoV v||To3+s14v100

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TABLE ITI

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5-37

TABLE III - CONT
AC CHARACTERISTICS (Ta = 0 °C TO 70 °C, Voc = 5 V + 10%) TIMING REQUIREMENTS
TTTTTISECiLNLLICnMMLn [STATUS INACTIVE SETUPTIME |
TRYHSH |READY ACTIVE TO STATUS PASSIVE [3
reLsk

CS

TCLAK

TTTTSCoLVHUDLLLHLH [CLKLOWTOALEvaLio (2)
TCHOX |DATA HOLO TIME

{NOCBL = G20YO- U100TpPF(UI(FNTORASDAoLTL-

UNITS ns
f=--Ca}own
--|a--"
= C} = at
= --a"F)i

TTTCCeRHHBOOYTTLE
TCLGL | RQ/GT ACTIVE DELAY
TCLGH |RQ/GT INACTIVE DELAY TOLOH |OUTPUT RISE TIME TOHOL |OUTPUT FALL TIME

CL = 40 pF (IN ADDITION
TO NOP SELF-LOAD) FROM 0.8 V TO 2.0 V FROM 2.0 V 10 0.8 V

NOTES: [1] APPLIES ONLY TO T2 STATE (8 ns INTO T3)

SIGNAL AT BUS CONTROLLER SHOWN FOR REFERENCE ONLY, SEE FIGURE 3

APPLIES ONLY TO T3 AND WAIT STATES

[4] REFERS TO THE NUMERIC DATA PROCESSOR SPECIFIED BY THIS DOCUMENT

TABLE ITI

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APPLICATIONS INFORMATION: (FOR REFERENCE ONLY)

PIN DESCRIPTIONS:

NDP REFERS TO THE NUMERIC DATA PROCESSOR SPECIFIED BY THIS DOCUMENT.

SYMBOL

TYPE

NAME AND FUNCTION

015-ADo ]

1/0

ADORESS DATA: THESE LINES CONSTITUTE THE TIME

MULTIPLEXED MEMORY ADDRESS (T)) AND DATA {T?2,

13; Tw, Ta) BUS

ADDRESS MEMORY: DURING Tj THESE ARE THE FOUR

MOST SIGNIFICANT ADDRESS LINES FOR MEMORY OPERA-

TIONS. DURING MEMORY OPERATIONS, STATUS INFOR-

MATION T3, Ty, S(6H,IGH$)4,,

ISAWANNHODIALVEATSIq3L.SA5ABRLEFEIOSRROAENLSNWEDAPRTYVHSEECDSOENLTOAWRNL.ODILNLECESUTDRHERDSEUBENRUTSILNLYGICNYECTOSLNoEE,S,

ANARLE MIINCPRUOTSPROWCHEISCSHORTHEIS NDIPN MCOONNTIRTOOLRS WHEN AN EXTER-

BUS HIGH ENABLE: DURING T; THE BUS HIGH ENABLE SIGNAL (BHE) SHOULD BE USED TO ENABLE DATA ONTO THE MOST SIGNIFICANT HALF OF THE DATA BUS, PINS Dis - Dg
STATUS: FOR NOP DRIVEN BUS CYCLES, THESE STATUS LINES ARE ENCODED AS FOLLOWS:

$2

$1 $0

0 (LOW) xX X UNUSED

1 (HIGH) O O UNUSED

1

O 1 READ MEMORY

4

1

1 0 WRITE MEMORY

1

1 1 PASSIVE

STATUS IS DRIVEN ACTIVE DURING Tq, REMAINS VALID DURING T, AND To, AND IS RETURNED TO THE PASSIVE STATE (1, 1, 1) DURING T3 OR DURING Tw WHEN READY IS HIGH

REQUEST/GRANT: THIS REQUEST/GRANT PIN IS USED BY
THE NPX TO GAIN CONTROL OF THE LOCAL BUS FROM THE CPU FOR OPERAND TRANSFERS OR ON BEHALF OF ANOTHER
BUS MASTER. IT MUST BE CONNECTED TO ONE OF THE TWO PROCESSOR REQUEST/GRANT PINS.

REQUEST/GRANT: THIS REQUEST/GRANT PIN IS USED BY ANOTHER LOCAL BUS MASTER TO FORCE THE NDP TO REQUEST THE
LOCAL BUS. IF THE NOP IS NOT IN CONTROL OF THE BUS WHEN THE REQUEST IS MADE THE REQUEST/GRANT SEQUENCE IS PASSED THROUGH THE NDP ON THE RO/GTop PIN ONE CYCLE LATER. SUBSEQUENT GRANT AND RELEASE PULSES ARE ALSO PASSED THROUGH THE NDP WITH A TWO AND ONE CLOCK DELAY, RESPECTIVELY, FOR RESYNCHRONI ZATION. RO/GT] HAS AN INTERNAL PULLUP RESISTOR, AND SO MAY BE LEFT UNCONNECTED

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PIN DESCRIPTIONS: CONT

CLK
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NAME AND FUNCTION

Q51, QS0: QS1 AND QSo PROVIDE THE NOP WITH STATUS TO ALLOW TRACKING OF THE CPU INSTRUCTION QUEUE

Qs 0 (LOW)
0 1 (HIGH)
I

QSo
0 NO OPERATION
1 FIRST BYTE OF OP CODE FROM QUEUE 0 EMPTY THE QUEUE 1 SUBSEQUENT BYTE FROM QUEUE

ENTERRUPT: THIS LINE IS USEO TO INDICATE THAT AN
UNMASKED EXCEPTION HAS OCCURRED DURING NUMERIC
INSTRUCTION EXECUTION WHEN NOP INTERRUPTS ARE ENABLED. INT IS ACTIVE HIGH

BUSY: THIS SIGNAL INDICATES THAT THE NDP NEU IS
EXECUTING A NUMERIC INSTRUCTION. IT IS CONNECTED TO THE CPU'S TEST PIN TO PROVIDE SYNCHRONIZATION. IN THE CASE OF AN UNMASKED EXCEPTION BUSY REMAINS ACTIVE UNTIL THE EXCEPTION IS CLEARED. BUSY IS ACTIVE HIGH

READY: READY IS THE ACKNOWLEDGMENT FROM THE ADDRESSED
MEMORY DEVICE THAT IT WILL COMPLETE THE DATA TRANSFER. THE RDY SIGNAL FROM MEMORY IS SYNCHRONIZED BY A CLOCK GENERATOR TO FORM READY. THIS SIGNAL IS ACTIVE HIGH

RESET: RESET CAUSES THE PROCESSOR TO IMMEDIATELY
TERMINATE ITS PRESENT ACTIVITY. THE SIGNAL MUST BE ACTIVE HIGH FOR AT LEAST FOUR CLOCK CYCLES. ,RESET IS INTERNALLY SYNCHRONIZED

CLOCK: THE CLOCK PROVIDES THE BASIC TIMING FOR THE PROCESSOR AND BUS CONTROLLER. IT IS ASYMMETRIC WITH A 33% DUTY CYCLE TO PROVIDE OPTIMIZED INTERNAL TIMING

POWER: Vere IS THE 5 ¥ POWER SUPPLY PIN
GROUND: GND ARE THE GROUND PINS

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12/14/83
PART NUMBER 222393 7-0002

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DESCRIPTIONsccanseaen *e@ tebe aeaeee ee 2 eeiaaa
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QUANTITY.
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C0001.000 00002.000 00003.090 OOOOL.O0O0 00002.000 09001.000 OC001.000 VOOOL.000 ONC00.167

COMPONENT...
2223091-0001 2223025-0001 2223026-0001 2220637T-0001 2221478-9005 2221479-0001 0418082-0001 0972831-0004 0972684-0018 0972684-0011 2232997-0001 2233003-0002 2223000-0002
2207869-0001 O411115-00f4 0O411100-007T2 2220354-c00! 099681N-0007 222132 717-0001 0972632-0001 223299 7-0002 9410499-C007

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12/14/83

PART NUMBER
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DESCRIPTTNec ccc cnet eee eeresacanseeueeen

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2223038-0001 2223929-0001 2223033-0001 2223034-0001 0996289-0001 0996289-0002
222 3075-0002 0996943-0001 2211919-0002 0972988-0043

MATN FNCLOSURE, SUBASSY

1669-1038-000

COVER, TEPNINAL

16 7 A= 3079-999

PLATE OPTION AOARND

L67A-3133-052

INSERT PLATE »FLOPPY

1678-3134-041

CNRD SETs3-PIN PWR-NOMESTIC BLACK

080 126-0-7889-008-GY

cS

COPD SET,3---PIN PHWR-DOMFSTIC GRAY W/CLTP

ORO 126-0-7919-008-6Y

*MAY BE USED AS AN

0890126-9~7919-004-GY

*ALTERNATE TO ITEM 6.

080126-0-7919-008-GY

LABEL, SERIAL-950 TERMINAL, RASIC DOMESTIC

1669-2075-000

LABEL, SELF -ADHESTVE,.656 X .25

165 2-1274-900

PLUG eHOLE-1.563 DEA

SEE TI- DRAWING

SCREW 8-32 X .375 PAN HEAD CRES

0972684-0011 2223082-0001

SCREW, THREAD FORMING,»6-32

165 8-

-000

INTERCONNECT DTAGRAM

X .375

097 2632-0001 2223076-0001 2223020-0001 2223090-0001

STRAP,TIE DOWN, CABLE-NON-STN1,-O1-/4 D.
INSERT SWITCH OPENING 1PA2N5E5L-35F1RO9N-T00R N1A2M5E5P-L3A5T2E1,-O8P1ROFESSIONAL COMPUTER ~------~ --000

5-58

12/14/83

PART NUMBER

REV

2223050-0002

AH

ITEM,

QUANTITY.

0035

00004.000

0036 0037

00001 .000 OGO001.000

0038

6000! .000

0039 004!

00001.000 00001.000

0046

00001.000

0048

60001.000

0051

600001.000

0052

00001.000

0056

00001.000

0057

00001 .000

List of Materials

DESCRIPTIONS soa scecwcceccesecccccccccses

SYSTEM ASSY-BASIC

.

COMPOMENT.. OFT 2969-0010 0972969-0009 2232333-0001 2769942-0001

NESCRIPGTONesece

stecss ces

cect ee eee eee ee

SCREW #6-20 X 1 LG THD PL HEX WASHER

SCREW,s6-20 X 7/8 HEX SEF TI= DRAWING LABEL,FCC-CLASS 8 SEE TI- PRAWING
LABEL UL

WASHER

HEAD

UM
FA EA EA

2269943-0002 222309 T-C00l

LABEL, CSAsLRS9OLL-COLLEGF STATION SEE TI- DRAWING
CABLE ASSY,MOTHERANARD TO FLOPPY

09%9456-9701 222 3203~0001 2232983-0001

MANUAL ,TNFORMATION REQUEST FORM 1225-9456-000 MANUAL=-GETTING STARTED
121 2-3203-C00
LABEL+ LOAD RATING ,PRNFESSIONAL COMPUTER

223233 A-0001

LABEL, PARALLEL PRINTER

093666 7-0001

LABEL, IDENTIFICATION PROF. COMPUTER

053299T-0019

BAG,POLY, t2 X 12 SEE TIi- DRAWING

2/14/83

PART NUMBER

REV

2223050-0003

AH

ITEM,

QUANTITY.

0001

00001.000

0002

¢0001.000

0003

00604.000

0004

00001.000

0006

ood00r. 600

0007

00000.000

OOOTA

oooTB

0009

00001.000

OO09A

000956

o009Cc

00106 O0tl

00011.000 00001.000

0013

00002.000

SYSTEMS ASSY STANDARD---320K ? DESCRIPTION:

sa cnccensesacccucsesesecvceecs

COMPONENT... 222303 8-0001 2223029-9001 2223033~0001 2223034~0001 0996289-0001 0996789-0002
2275609-0004

DESCRIPRION

sce

cecces cece sas

fener ete Toe

MATH ENCLOSURE, SUBASSY" 1669-1038-000 COVETER RTM ,INAL 1679-3029-999 PLATF OPTION RANARD 1678-3133-052 INSERT PLATE sFLOPPY 1679-3134-04]1 CORD SET,3-PIN PWR-DOMESTIC BLACK 080 126-0-7999-008-GY CORD SET,3-PIN PWR-DNMESTIC GRAY W/CLIP 080 126-0-7919-008-GCY *MAY RE USED AS AN 0*8AL0T1E2R6N-A0T~E791T9O-00IT8E-MfY6. 080126-0-7919-008-GY ID, SERTAL NO LAREL, ALANK, COLLEGE STA

Us
EA EA FA FA EA EA
EA

*O=PROFESS TONAL COMP BASIC

*N=2223050-0003, A= 2.5

*V= 120, Fe60, W=250

0996943-0001

LABEL+SELF-ADHESIVE26,56 X 125

EA

165 2-12 74-000

2211919-0002

PLUG, HOLE-1.563 DIA

EA

SEE TI~ MRAWING

097 7988-0043

SCREW 8-32 X .375 PAN HEAD CRES

EA

5-59

12/14/83

List of Materials

PART NUMBER

REV

2223050-0003

AH

NESCRIPTION SS s «esse c.c c's coc ccs calle a's ea 5 a
SYSTEMS ASSY STANDARD- 320K

ITEM.

QUANTITY.

COMPONENT...

DNESCATEILON. «6 so ate-a ec sass a oan as 6 ee a a ered UM

0014 OOLT 0020 OO2Z0A 60208 0025 0029 60031 0032 0033 0035 0036 0037 0038 0039 0041 0046 0048 0050 0051 0052 0053 0054 OO54A 0054A 0055

00010.000 00001.0060 00000.900

0972684-0011 2229446-0002 2223009-0001

REF

22273082-0001

SCREW, THREAD FORMENG, 6-32 X .375 165 8- -000

FA

DISK ORI VE ASSY,FLOPPY,5.2STNCH-DUAL HN SFE TI~ DRAWING

FA

ALPHA CRT CONTROLLER 1254-3009-029

EA

*THIS ITEM MAY RE SUBSTI-

1254-3009-029

*TUTED FOR ITEM 454

1254-3009-029

INTERCONNECT OLAGRAM

EA

90001 .000 097 2637-0001

STRAPeTEE DOWN, CARLE-NON-STD,0-1~-1/74 D.

FA

00001 .000 2223076-0001

INSERT SWITCH OPENING

EA

00001.000 2223020-0001

1255-3519-008 PANEL,FRONT

EA

00001.000 2223090-0001

1255-3521-011 NAME PLATE »,PROFETOSNSAL COMPUTER

EA

00004.000 0972969-0010

SCREW 46-20 X 1 LG THD PL HFX WASHER

EA

00001 .000 0972969~-C009

SCREW,6-20 X T/A HEX WASHER HEAN

EA

00001.000 2232333-0001

SEE TI~ DRAWING LABEL »FCC-CLASS BA

EA

SEE TI- DRAWING

00001.900 22697942-0001

LABEL »UL

EA

00001.000 2269943-0002

LABFLe CSA,LR4S9011T COLLEGE STATION

EA

Q0001.000 222309 77-0001

SEE TI- DRAWING

?

CABLE ASSY,MOTHERBOARD TO FLOPPY

EA

00001.000 0999456-9701

MAHUAL. INFORMATION REQUEST FARM

FA

00001.000 2223203-0001

1225-9456-000 MANUAL-GETTING STARTED

|

EA

1212-3203-000

REF

2223279-C001

CONFIGURATTON, FLOPPY NISK DRIVES

EA

C0001.000 ZZ24Z9A%4-O0001

LABEL, LOAD RATINGsPROFESSTONAL COMPUTER

FA

00001 .000 22423 4R-0001

LABFL. PARALLEL PRINTFR

FA

00001.000 2261914-9901

FI-MIX MEMBERSHIP FORM

EA

00001 .000 22723100-0001

1261- REF-000 VINDEN CRT CONTROLLER

EA

1254-3100-060

*ITTEM #20 MAY BE USED AS AN

1254~3100-960

*ALTFERNATE FOR THIS PART

1254~-3100-060

REF

2275610-0001

SPECTFICATIOTNOE,NT SERIAL NO. LABEL

FA

0056

00001.6000 0936667-0001

LABFLAYDENTIFICATION PROF. COMPUTER

FA

OOST

00001 .000 053299 7T-0019

BAG,POLY, 12 X 12

FA

SEF Ti- DRAWING

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List of Materials

PART NUMBER

REV

2 223051-0001

AB

ITEM.

QUANTITY.

0001

00001 .000

0002

0C001.000

0003

00004.000

0004

00001.000

0006

00001.900

0009

00007 .000

O009A

NESCREPTION.

cece

cet aneneceneaeseeaeeess

SYSTFM ASSY-INT*L-320K

COMPONENT... 222303A-0002 2223029-0001 2223033-0001 2224034-0001 0996290-0001

DESER LP UL

Ss ate 4c 's's-sletetata "ss sc ata's » es gots so

UM

MAIN ENCLOSURE SURASSY-BPO

EA

1669-2038-000

COVER, TERMINAL

EA

167R-31929-999

PLATE OPTION BNARN

EA

1678~3133-052

INSFRT PLATE, FLOPPY

FA

1678-31340-41

CORDSET, POWR-WEST EURO-RT ANGLE PLUG

FA

2275609-0004

IN, SERTAL NO LABEL, BLANK, COLLEGE STA

FA

*#D=PROFESSTONAL COMP TNTPL

o009n 0009C 0010 Oot OOL3 0014 COLT 0020 OO20A 00206 0025

O0011.000 00001 .000 00002.000 10010.000 00001.9000 00000.000

099694%3-0001 2211919-0002 097 2989-0043 0972684-0011 2220446-0002 2223009-0001

REF

2223082-0001

*N=2223051-0001, A=z=1.25

*V2240, F250, W=250

LABEL, SELF -AOHE ST VE,.656 X 425

EA

1652-12 74-000

PLUG,HOLF-1.563 OTA

EA

SEE TI- DRAWING

SCREW 8-32 X .375 PAN HEAD CRES

EA

SCREW, THREAD FORMING,6-32 X .375

EA

1658-

~000

DISK ORIVE ASSY,FLOPPY »5.25ENCH-NUAL HD EA

SFE Ti- DRAWING

ALPHA CRT CONTROLLER

EA

1254-3009-029

a>

*THIS ITEM MAY BE SUBSTI-~

1254-3009-929

*TUTED FOR ITEM #54

1254-3009-029

INTERCONNECT DTAGRAM

FA

0029 0031 0032 0033 0035 0036 0041 0046 0047 0048 0049 0049A

00002.000 0C001.000 00001.600 00001.000 00004,000 00001.000 00001.000 60001.000 00001.000 6C001.000 00000.000

0972632-0001 222307T6-0001 22230920-0001 2223090-0001 0972969-0010 0972969-0009 222309 7-0001 0999456-9701 22225 74-0002 222 3203-0001 0996694-0001

STRAP, TIE DOWN »CABLE-HON-ST0,0-1-1/74 0D.

EA

INSERT SWITCH OPENING

EA

1255-3519-008

PANEL,FRONT

EA

1255-3521-O011

NAMEPLATE, PROFESSIONAL COMPUTER

EA

Sa oe eli

SCREW #6-20 X% LI LG THO PL HEX WASHER

EA

SCREW»6-20 X 7/8 HEX WASHER HEAD

EA

SEE TI- DRAWING

CABLE ASSYseMOTHFRROARD TO FLOPPY

FA

MANUAL, INFORMATION REQUEST FORM

FA

1225-9456-000

LABEL, CAUTION (8°0)

FA

0000-90990-000

MANUAL-GETTING STARTED

EA

1212=%203-000

CABLE ASSY,PWRAELEC {INTERNATIONAL}

EA

080 126-64-1-075

*THIS PART MAY BE USEN AS

090126-64-1-075

5-65

12/14/83

PART NUMBER

REV

2223951-0001

AB

ITEM.

QUANTITY.

00498

0050

REF

0051

00001 .000

0052 0954 OO54A

00001.000 90001 .0C0

0O54A

0055

REF

6056 0057

00001 .000 00001.009

List of Materials

DESCR ce ccI cvrP cccT ececI vesO ecvN sccv, ecses SYSTEM ASSY-INT*L=-320K

COMPONETIT. » NESCRIPT ION.. ee

22232 79-0001

*AN ALTERNATE FOR TTEM & OAC! 26-64-1-075 CONFIGURATION,FLOPPY DISK DRIVES

2232338-0091 2761914-9901 ?223100-0001
2275610-0001

LABFL, PARALLEL PRINTER

TI-MIX MEMBERSHIP FOPM 1261- REF-000 VINDEN CRT CONTROLLER 1254-3100-060 *{TFM #20 MAY BE USED AS AN 1254-3100-060
*ALTERNATF FOR THIS PART 1254-%3100-060 SPECTFICATIOENDE,NT SFRITAL NO.

LABEL

093666 17-0001

LABEL, TINENTTFICATION PROF. COMPUTER

0532997-0019

BAGsPNLYs 12 X 12 SEE TI~ ORAWING

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12/14/83

PART HUMBER

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12/14/83

PART NUMBER

REV

2223061-5001

R

List of Materials

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12/14/83

PART: NUMBER

REV

222306 1-5001

R

List of Materials

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12/14/83

List of Materials

PART

NUMBER

222306 1-S001

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12/14f83

List of Materials

PART NUMBER

REV

2223061-5002

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DESCRIPTION.

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12/14/83

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DESC RIPTIONicscascsececesaccseue cca sssas
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12/14/83

List of Materials

PART

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12/14/83

PART NUMBER

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12/14/83

List of Materials

PART NUMBER

REV

2223100-5001

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12/41/ 83

PART NUMBER REV

2223100-5001

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12/14/83

List of Materials

PART

NUMBER

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12/14/83

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NUMBER

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12/14/83

List of Materials

PART NUMBER

REV

223052 868-0008

L

ITEM. QUANTITY.

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12/14/83

PART NUMBER

REV

2230 528-0007

L

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DESCE TP RION ts aelee sas ses ules c sts cre sc o = oo aa o
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COMPONENT. .} 2230529-0001 2230536-0001 2230534-0001 2230532=-0001 2230546-0001 2230 546-0002 2230547-0001 223054 7-0002 2230540-0001 223052 17-0007 2230530-0001 2230538-0001 2230554-0001 2230552-0001 2230549-0001 0972679-0029 0972679-0012 0972679-0015 2230555-0007 2230556-0001 097267T9-0013 0936643-0001 0936664-0002 0411101-0058 0972436-0011 22 75609-0004

DESCRIPTION cccccccsavesccccsevesneneeenes
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5-198
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12/14/83

List of Materials

PART NUMBER REV

2230 528-0906

L

DESCRIPTION ccc ccucccewcccees et#etegagagese
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ITEM. 0001 0002 0003 0004 0005

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9-197

12/14/83

List of Materials

PART NUMBER

REV

223052 8-0005

L

DESCRIPTION... Seee eee sees tee eaaeeaaeeeecan
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ITEM. oool 0002 0003 0004 0005

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0014

00002.000 2230552-0001

FA

001s

00001 .000 2230549-0001

CABLE ASSY »KEYRCOARD

FA

OOLT

00002.000 097 267T9-0029

SCREW

EA

0018

060006 .000 0972679-0012

SCREW # 6-19 X 3/8 SLOTTED HEX

EA

0019

00003.500 097 2679-0015

SCREW #6-19 X 374 THD SLOTTED HEX.

EA

0020

90002.900 2230555-0007

RINGsPETAINING

EA

0022

00002.0C0 2230556- 0001

PAN»NOHNSKIO,P/T

FA

0023

00006. 000 0972679-9013

SCREW # 6-19 X 1/2 SLOTTED HEX

FA

0025 0026 0027 0028 0029

00001.000 0936643-0001

PC CLAMSHELL THERMOFORM STYRENE

FEA

SEE Ti+ DRAWING

00001.000 0936664-0002

LOW PROFILE KEYBOARD 80x

EA

SEE TIi- ORAWING

00004.000 O411101-0058

LOCKWASHER #& EXTERNAL TOOTH CRES

EA

QPL

~ 4$35335-58

00000. 048 0972436-O0011

INSULATION SLEEVINGP,VC B X.133

FT

003 490-HT-105C-8

00001 .000 2275609-0004

ID, SFRIAL MO LABEL, BLANK, CNLLEGE STA

FA

OO29A

* D= LOW PROFILE KEYBOARD,

00298 0029C

* SPN, N= 2230528-0005,
* A= 0.35, We 4.2) V= 12,

0029D

*F= 0, P= 0

5-196

12/14/83

PART NUMBER REV

223052 8-0004

L

ITEM.

QUANTITY.

ooo!

OO00L.000

0002

00001.000

6003

00001.000

0004

00002.000

0005

00001.000

0006

00001 .000

0007

00001.000

0008

00001.000

0009

00001.000

0010

OOCOL.000

onit

00001.000

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00002.000

0013

00002.000

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00002.000

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00001.000

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0026

ocoot.000

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00004.000

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00001.000

O029A

o029--A

0029C

00290

List of Materials

DE SCRIPTION

we cece ceeaneseasatecesenaaas

KYBD,TILTING,LOW PROFILE. GERMANY/ AUSTRIA

COMPONENT. « 2230529-0001 2230536-0001 2230534-0001 2230532-0001 2239 546-0001

DESCRIPT LON eacceccc cence sccccccesanvceves
BASE, KEYBOARD 1255=-7500-015 HOUS » SHI AFTNeG R TIGHT 1255-75 04-006 HOUSINGsSHAFT,LEFT . 1255-7503-006 SHAFT, CLUTCH SPRING 1255-7502-007 SPRING, CLUTCH

2230546-0002

SPRING, CLUTCH

223054 7-0001

SPRINGe RETURN

2230547-0002

SPRING, RETURN

2230 540-0001 223052 7-0004 2230530-0001 2230538-0001 223 0554-0001

FOOT, TILT ADJUSTMENT 1255= 7506-008 KEYBOARD ,LOW PROFILE, GERMANY /AUSTRIA SEE TI~ DRAWING COVER sKEYBOARD, PERSONAL COMPUTER 1255-7501-015 BUTTON,REL»TILT FOOT,PERSONAL COMPUTER 1255=7505-007 BRA,C SPRK INGE , BT UTTON

223055 2-0001

2230549-0001

CABLE ASSY,»KFYBOARD

09726 79-0029

SCREW

0972679-CO12

SCREW # 6-19 X 3/8 SLOTTED HEX

097 2679-0015 2230555-0007

SCREW #6-19 X 3/4 THD SLOTTFD HFX RING,RE TAINING

2230556-0001

PAN, NOMSKID,P/T

0972679-0013

SCREW # 6-19 X 1/2 SLOTTED HEX

093 6643-90001 093 6664-0002 0411101-0058 097 2436-0011 2275609 0004

PC CLAMSHELL THERMNOFORN STYRENE SEE TI=- DRAWING LOW PROFILE KEYBOARD BOX
SEE TI- DRAWING
LOCKWASHER #6 EXTERNAL TNOTH CRES QPt - 4$35335-58 INSULATION SLEEVING,PVC 8 X.133 003890-HT-105C-8 IDs SERTAL NO LABEL, BLANK, COLLEGE STA

* D= LOW PROFILE KEYAOARD,

*® GER/AUS,s N= 2230528-0004,

* Ao 0.35, W= 4.29 V2 Ll2e

* Fo 0, P= 0

UM
EA EA EA EA EA EA EA EA EA FEA EA FA FA EA EA EA EA EA FA EA FA EA EA EA FT

5-195

12/14/83

PART NUMBER

REV

2230528-0003

L

ITEM.

QUANTITY.

9001

OCOO0l .d00

0002

O0001.0909

0003

00001 .000

0004

00002.000

0005

00001.000

0006 0007 0008 0009 0010 o011 0012

00901.000 0C001.000 90001.000 00001 .000 00001.0090 00001 .000 00002.000

0013

00002.000

0014

00002.000

0015

00001 .cd0

0017

N0002.000

0018

00006.000

0019

00003.000

0020

00002 .000

0072

00002.000

0023

39006.000

0025

00001.000

00264

00001.000

0027

00004.000

0028 0029 00294

00000.048
00001.000

0029R

0029¢

00290

List of Materials

NE SCRIPT

ONeaecccscecvcceceanvecace eee ean 6

KYBN»TILTINGL,OW PROFILE, FRANCE

COMPONENT... 2230529-0001 22390536-0001 2730534-0001 2230532-0001 2230546-0001

DESCRIPT TONawcn sneer esnecesesecercsccens
BASE sKEYBMARD 1255-75090-015 HOUSING »SHAFT sR IGHT 1255-7504-006 HOUSING, SHAFT,LEFT 1255-7503-006 SHAFT, CLUTCH SPRING 1255-7502-007 SPRING, CLUTCH

UM
FA EA FA EA FA

2230546-0002

SPRING: CLUTCH

EA

223054 f-0001

SPRING, RETURN

EA

2230547-0092

SPRING, RETURN

EA

2230540~0001

FOOT,TILT ADJUSTMENT

EA

1255~-7506-008

223052 7-0003

KEYBOARD ,LOW PROFILE, FRANCE

EA

SEE TI- DRAWING

2230530-0001

COVER-KEYAOARD,PERSONAL COMPUTER

EA

1255-7501-015

2230538- 0001

BUTTROELN», TILT FOOTePERSONAL COMPUTER

EA

1255-7505-00T

2230554-0001

BRACKET» SPRING,» BUTTON

FA

223055 2-0001

EA

2230549~0001

CABLE ASSY,»KEYBOARD

EA
it)

09726T9-0029

SCREW

¢

FA

0972679-0012

SCREW # 6-19 X 3/78 SLOTTED.HEX

EA

0972679-0015

SCREW #6-19 X 3/4 THD SLOTTED HEX

EA

2230555-0007

RING,RE TAINING

EA

2230556-0001

PAN ,NONSKIO,P/T

FA

0972679-O001L3

SCREW # 6-19 X 1/2 SLOTTED HEX

EA

0936643-0001

PC CLAMSHELL THERMOFORM STYRENF

EA

SEE TI~ OR AWING

9934664-0002

LOW PROFILE KEYBOARD BOX

EA

SEE TI=- ORAWING

0412101-0058

LOCKWASHER #6 EXTERNAL TONTH CRES

FA

QPL

~- M§35335~+-58

097 2436-0011

INSULATION SLEEVING,PVC & X.133

FT

003 A90-HT-105C-8

2275609-0004

ID,SERIAL NO LABEL, BLANK, COLLFGE STA

FA

* f= LOW PROFILE KEYBOARD,

* FRENCH, N= 2230578-0003,

* A= 0.35, W= 4.2, Ve t2,

* F= 0, P= 0

5-194

12/1 4/ 83

List of Materials

PART NUMBER

REV

2230 528-0002

t

DESCRIPTION... Steet eet ee eew ease eeaeateees

ITEM. 0001 0002 0003 0004 0005

QUANTITY. 00001.000 00001.090 00001.000 00002.000 00001.0090

COMPONENT.» 2230529-0001 2230536~0001 2230534-0001 223053 2-0001 2230546-0001

DESCRIPTION ews

cee ce ea

BASESKEYBOARD 1255-7500-015 HOUS ING » SHAFT, RIGHT 1255-7504-006 HOUSING «SHAFT, LEFT E255-7503-006 SHAFT, CLUTCH SPRING 1255-7502-00T
SPRING, CLUTCH

ca. se Le

0006

00001.000 2230546-0002

SPRING, CLUTCH

o007 0008 0009 0010 OOll 0012 0013 0014

OC001 .000 CO001.000 6c001.060 00001.000 00001 .000 00002 .000 00002.000 00002.000

2230547-0001 223054 77-0002 2230540-0001 223052 7-0002 2230530-0001 223053 8-0001 2230554-0001 2230552-0001

SPRING, RETURN
SPRING, RETURN
FOOT TILT ADJUSTMENT 1255~+7506-008 KEYSOARD,LOW PROFTILE.UNITED KINGDOM SEE Ti- DRAWING COVER »KEYBROARD, PERSONAL COMPUTER 1255-7501-015 BUTT REO L sN TILT FOOT,PERSONAL COMPUTER 1255-7505-00T BRACKET eSPRING, BUTTON

0015 0017

00001.000 oc002.000

2230549-0001 0972679-0029

CABLE ASSY»KEYBOARD SCREW

OO18s8

00006.090 097267T9-0012

SCREW # 6-19 X 3/8 SLOTTEN HEX

0019 0020 0022 0023 6025 0026 0027 0028 0029 GO2Z9A 00298 0029C 0029D

00003.000 600002.000 00002.000 00006 .000 00001 .000 00002 .9000 00004.000 00006.048 00501.000

097 2679-0015 2230555-0007 2230556-0001 0972679-0013 0936643-0001 09346664-0002 0411161-0058 0972436-0011 2275609-0004

SCREW #6-19 X 3/4 THD SLOTTED HEX
RING,RETAINING
PAD »NONSKIDP,/T
SCREW # 6-19 K 1/2 SLOTTEN HEX
PC CLAMSHELL THERMOFORM STYRENE SEE TI- DRAWING LOW PROFILE KEYBOARD Aanx SEE TIi- DRAWING LOCKWASHER #6 EXTERNAL TOOTH CRES QPL - 4$35335-58 INSULATION SLEEVEING,PVC 8 X. 233 003890-HT~ 105-8 ID,;SERTAL NO LABEL, BLANK, COLLEGE STA
* D= LOW PROFILE KEYBOARD,
* UK, N= 2230528-0002,
* A= 0.35; W= 4.275 V= l2-s
* F= 6G, P= O

UM
EA EA EA FA EA EA EA EA

§-193

12/14/83

List of Materials

PART NUMBER

REV

2230528-0001

L

DESCRIPTION acccncseccccesecnsenaescevess
KYBO, TILTING,-LOW PROFILE,DOMESTIC Sin

ITEM. ooo 0002 0003 0004 0005

QUANTITY. OOOO! .000 00001 .000 00001 .000 00002.000 00001.009

COMPONENT... 2230529-0001 223053 6-9001 2230534-0001 2230532-0001 2230546~0001

DESCRIPTION tee w etac o «0.20 o's 6 ae oa ete s aoe as Le

Un

BASE »sKEYBOARD

EA

1255-7500-015

HOUSING «SHAFT »RIGHT

FA

1255=-7504-006

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1255-7503-006

SHAFT, CLUTCH SPRENG

EA

1255-7502-007

SPRING, CLUTCH

FA

0006

00001 .009 2230546~0002

SPRING, CLUTCH

EA

oooT

00001 .000 2230547-0001

SPRING, RETURN

EA

0008

00001.000 2230547~0002

SPRING, RETURN

EA

0009

60001.000 2230540-0001

FOOTSTILT ADJUSTMENT

EA

1255-7506-008

00190

090001.000 223052 7~0001

KEYROARD LOW PROFILE,POMESTIC STD

EA

0011 vol2 0013

00001.060 2230530-0001

COVER -KEYBOARD, PERSONAL COMPUTER

EA

1255-7501-015

090002.000 2230538-0001

BUTTAN,REL,TILT FOOT,PERSONAL COMPUTER

FA

1255-7505-007

00002.000 2230554-0001

BRACKET «SPRING BUTTON

EA

0014 o0r5 OO17

00002.000 00001 .000 00002.000

2230552-0001 2230549-0001 097 2679-0029

CABLE ASSY KEYBOARD SCREW

FA
EA
a}
FA

0018

00006 .090 0972679-0012

SCREW # 6-19 X 378 SLOTTED HEX

EA

0019

60003.000 097 2679-0015

SCREW 46-19 X 3/4 THN SLOTTED HEX

EA

6020

00002.000 2230555~0007

RINGsRETATNING

EA

0022

00002.000 2230556-000L1

PAD, NONSKED,P/T

FA

0023

00006.000 0972679-0013

SCREW #@ 6-19 X 1/2 SLOTTEN HEX

EA

0025 0026 0027 0028 0029

00001.000 0936643-0001

PC CLAMSHELL THERMOFORM STYRENE

EA

SEE Ti- ORAWENG

00001.000 0936664-C002

LOW PROFILE KEYBOARD BOX

EA

SEE TI- DRAWING

00004.000 6411101-0058

LOCKWASHFR #6 EXTERNAL TONTH CRFS

EA

QPL - 4S35335-58

00000. 048 097 2436-0011

INSULATION SLEEVINGP,VC 8 X.133

FT

003890-HT~-LOSC-8&

O000L.000 2275609-0004

ID, SERIAL NO LABEL, BLANK, COLLEGE STA

EA

CO29A 002968 Q029C

* D= LOW PROFILE KEYBOARD,
* N= 2230528~0001, A= 0.3%¢ # W= 4.2, V= 12, Fe 0, P= O

9030

CO0001.009 2269942-00901

LABEL - UL

EA

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PART NUMBER 223426 1-0001

REV A,

List of Materials

DESCRIPTION. Se SSS

CSP SCPC

EEC ERE HEBER ES

SPEECH MODULE, PROFESSIONAL COMPUTER

ITEM.
0001 0002 0003 0004 0005 0006 0007 o008 0009 0010

QUANTITY.
O00001.000 00001.000 00001.000 00001.000 Q0001.000 O00CO1.000
REF 90003.900 00001.000 00001.000

COMPONENT .-
2232403-0001 2232373-0001 2211839-0003 2221313-0001 2221313~-0002 2221313-0003 2219301~-0001 0996341-0001 2237357T-0001 097263 2-0006

DESCRIPTION secncccccccscasncasecaccesese

UM

TELEPHONE ELECTRONICS

EA

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SPACER,PC BOARD, NYLON

EA

SEE Ti- ORAWING

HNP ,DUAL ANOY,12 STR PINS .370" LtROW

EA

SEE TI- DRAWING

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SPEC»HNLG,EC SENSITIVE PARTS AND ASSYS

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12/14/83

PART NUMBER

REV

2234261-8001

i

ITEM.

QUANTITY.

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COMPONENT... 2232403-0001 22423 73-0001 2211839-0003 2221313-0001 2221313-0002 2221313-0003 2219301-0001

DESCRIPT TON wcccc cscs eee ceca

eeveteseees

UM

TELEPHONE ELECTRONICS 1254-24 03-000 SPEECH ELECTRONICS 1254-23 73-000 SPACER,PC BOARD,NYLON SEE TI- DRAWING HDR,OUAL BODY,1Z2 STR PINS o37C" LROW SEE TI- ORAWING HDR,DOVAL RODY.18 STR PENS e370" LROW SEE TI- DRAWING HEADER, DUAL BSDDY,Z22STR PINS .370" 1 ROW
SEE TI~ DRAWING SPEC,HOLG,EC SENSITIVE PARTS AND ASSYS

0996341-0001 2237357-00010972632-0006

SPACER,PC BOARD,.1825" AONY, PLASTIC SEE TI- DRAWING SPACER, SPEECH BOARD SEE TI- DRAWING STRAPTIE DOWN, CABLE -NON-STANDARD 060477=SST3S

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12/14/83

PART NUMBER

REV

2234 246-0061

B

List of Materials

DESCRIP

LONe cs ccccvassecesescceneseessoe

256K RAM EXPANSION (SLAVE BOARD)

ITEM.
0002 0003 0005 OOO5SA 0009 0010 0011 0999

QUANTITY.
REF 00006.000 00002.000
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COMPONENT...
2234248-0001 0996341-0003 2210288~0022
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DESER ICON

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256K RAM EXP.CSLAVE BRD) AUTO-INSERT

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12/14/83

PART NUMBER

REV

2234 246-5001

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ITEM.

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12/14/83

PART NUMBER

RFV

2234 243-5001

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NESCRIBTION

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12/14/93

List of Materials

PART

NUMBER

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12/14/83

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PART NUMBER
2234 263-5001

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ONe cc cess ces ccenescersseaeseces

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12/14/83

PART NUMBER REV

2232 403-5001

M

List of Materials
DESCRIEI [Niece weccsaces Faeteesees seks as 5
TELEPHONE ELECTRONICS-AUTO INSFRTEN

ITEM.
OZ01A 0202 02024 0203 0203A 0204 O204A 0206 0206A 0207 O207A 0208 0208A 0209 O209A 0210 O2Z10A 0211 O2ZLLA 0212 O212A 0213 0213A 0214 O2Z14A

QUANTITY.

COMPONENT...

00000.000 2210600-0001

00000.000 2210604-0001

00000.000 2210606-0001

00000.000 2710631-0001

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DESCRIPT TON case ccc enc cw esse neeesecceceons UM

*SUBSTEITUTE FOR ITEM 25

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V-LIST-LS161 BURN-IN

*SUASTITUTE FOR ITEM 35

V-LEST-LS16l 8URN-IN

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EA

V-LIST=-LS367 BURN-IN

*SUBSTITUTE FOR ITEM 36

V-LIST-LS367 BURN-IN

ICeLS2L32,QUAD 2-INPUT NAND, SCHMITT TRIGG EA

V-LIST-LS132 BURN-IN

*SUBSTITUTE FOR ITEM 37

V-LIST-LS132 BURN-EN

1,%S158,QUAD 2-LINE TO 1-LINE DS,INV OV EA

V-LIST-LS158 BURN-IN

*SUBSTITUTE FOR ITEM 40

V-LIST=L5158 BURN-IN

5-179

12/14/83

List of Materials

PART NUMBER

REV

2232 403-5001

M

DESCRIDTION sees se cs ee a se ates sas se oe ate oe ee
TELEPHONE ELECTRONICS-AUTN INSERTED

ITEM. oo7Ts/A 0077

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COMPONENT... 0539370-0359

DESCR LEI UNes «oe a0 cea a a alates oe 6 e's eee oer ee

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165 8-

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0078 OOTBA 0079 OOTSA 00793 0080 OO80A 00381 OO814 0082 OO82ZA 0087 OOSTA 0089 OOBSA 0090 OO90A 0091 OODLA 0092 00924 0093 DOS3A 0094 OO944A 0140 O1L40A 0201

00003.000 0972946-0105

RES FIX 47 K OHM & % .25 W CARBON FILM

FA

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- R=-25

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~ R~25

00012.900 097 2946-0113

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EA

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aa Ra 25

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= R=25

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= re

60001.9000 097 2946-0087

RES FIX 8.2K OHM 5S % .25 W CARBON FILM

EA

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RES FIX FILM 10.0K OHM 12% .25 WATT

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mh

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EA

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00002.0090 0972946-0101

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EA

ROH = R=25

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0C:001.000 097 2946-0117

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EA

V-LIST-LS245 BUPN-IN

5-178

12/14/83

PART NUMBER

REV

2232 403-5001

M

List of Materials

DESCRIPTIONe oe Stee aeeegtr geee se e esebee

eegrseeeeebrtne¢

TELEPHONE ELEC TRONICS-AUTO INSERTED

OOSTA

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eA

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= R-25

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EA

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0065

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;

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= R=25

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= R=25

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12/14/63

List of Materials

PART NUMBER

REV

2232 403-5001

4

DESCR LEVIN dates class'es'e'a a a's sae a ataree ea ate an
TELEPHONE FLECTRONICS-AUTO INSERTED

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12/14/83

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List of Materials

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3.1.1 MATERIALS:

HOUSING, COVERS, GLASS REINFORCED THERMOPLASTIC,

UL

FLAMMABILITY RATING 94V-2 OR RET"ER

Jiro 2

CONTACTS:

BERYLLIUM COPPER WITE ENTIRE CONTACT UNPERPLATED

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WITH

JP lifes

CABLES:

NO. 28 AWC, 7 STRAND, TINNEN, ANNEALED COPPER, ONE EDGE

TQ HAVE cCOITOR STRIPE.
TORS, UL STYLF 2651.

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3.1.4

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SUMBFRS

FOR CONNECTORS

AND CABLE

ARE SHOWN

IN

AFTER THEIR

DESCRIPTIONS

IN APPLICABLE

FIGURE

bly 4 2.2.1 EP 4eg
3.2.3
3.2.4

ELECTRICAL VOLTAGE/CURRENT RATING:

300 VOLTS/1 AMP

IMPEDECWCE:

105 OHM NOMINAL

CAPACTTANCE: 0.045pf£/mm NOMINAL

PROPACATION BELAY:

4.6ns/m

Shey E 3.3.1
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ENVIRONMENT
AMBIENT TEMPERATURE: TO 76 ¢

0

6

OPERATING 5 TO 40 C,

RELATIVF HUMIDITY:

10 TO 902

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12/1 4/83

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PART

NUMBER

2232326-0001

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DE SCRIPTION e ws ccc cece ceases ncensacseeeas
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6001 0002 0003 0004 0005

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COMPONENT.
2220042-0024 2211341-000L 099649 1-0003 0983903-C002 2211340-0001

NESCRIPT ION cece cccsecccvesescosecseccces UM

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3.0 3h 3.1.1 3.1.2
3.1.3
3.1.4

REQUIREMFNTS

PEYSICAL:

SEE Fisure 1

MATERTALS:

HOUSESG, COVERS, CLASS RELNFORCED

FLAMMABILITY RATING 94V~-? OR BETTER

THERMOPLASTIC,

UL

CONTACTS:

BERYLITUMN COPPER WITH ENTIRE CONTACT UNDERPLATED

0.76 m NICKEL.

CONTACTS TO 0.76 m GOLF PLATED.

WITH

CABLES: TO HAVE

NO. 28 AUG, 7 STRAND, TINNED,

COLOR STRIPE.

POLYVINYL

ANNEALED COPPER, ONE EDGE CHLORIDE INSULATION, 34

CONDUCTOR2, UL STYLE 2651.

VENDOR PART PARENTHESIS DRAWINGS.

NUMBFRS AFTER

FOR THEIR

CONNECTORS AND MESCRIPTIONS

CABLE ARE SHOWN IN IN APPLICABLE FIGURE

jah 3.2.1 3.2.2 3.2.3
3.2.4

ELECTRICAL VOLTAGE/CURRENT RATING: 390 VOLTS/1 AMP IMPEDENCEK: 105 ORM NOMINAL CAPACITANCE: 0.046pf£/mm NOMINAL
PROPAGATION TPELAY: 4.6ns/u

Sens! 3.3.1
3.3.2

ENVIRONMENT
AMRIENT TEMPERATURE: LOR,OMEC

0
OPERATING 5

RELATIVE HUMIDITY:

10 TO 90%

o
TO 40 C,

.
NON-GPERATING

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12/14/83

PART NUMBER

REV

0996 289-8001

AB

ITEM. LeToz ad|

QUANTITY. 00001 .N00

List of Materials

DESCRIPTION ace ccaseenes SP CRF ECE REE
CORD SET,3-PIN PHWR-DOMESTIC BLACK

ETE 8

COMPONENT... 09962789-CO0L

DESCRIPTION saccanacees eR BSRC REECE E BR ER EG UM

CORN SET,3-PIN PWR-DNMESTIC BLACK

EA

0801 26-9-7889-008-GY

5-149

SUGGESTED SOURCE(S) OF SUPPLY:

LP FAIAE-THFEFSET--ERLEEBCETNRBICEO-RBEE-RE6H--BL--Y1E.881264 GARBERA Ch 98247

2

BELDEN CORP {16428}

P. 0. BOX 1101

RICHMOND, IN 47374

;

BH---6F-COLUMBTA-ELECTFRONTC-EABLES
REH-BEBFORB HA 5398925-7-ALTTENHOUSE--CERELE : BESO A FI

4

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a

AE-ETOR-ELEEFRICHGEARBEE-E8RP,

"HGEE S SA-T TSERSEH EEPH R AR

HIBUSFREAL-HIRE-PROBHEBTYS

CHICAGO, IL 60638

8.

VICTOR ELEC. WIRE & CABLE CORP.

618 MAIN STR.

(29870)

W. WARWICK, R.I. 02893

Ti--d238-E

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TI PART
NUMBER

MFR PART NUMB

996289-0001

996289-0002

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ti TEXAS INSTRUMENTS

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HOUSTON TEAAS

5-148

4.0

QUALITY ASSURANCE PROVISIONS:

4.1

RESPONSIBILITY FOR INSPECTION:

UNLESS OTHERWISE SPECIFIED IN THE CONTRACT OR PURCHASE ORDER, THE

SUPPLIER SHALL BE RESPONSIBLE FOR PERFORMING INSPECTIONS THAT ARE

SUFFICIENT TO ASSURE THAT THE PARTS SUPPLIED MEET THE REQUIREMENTS

SPECIFIED HEREIN.

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PACKAGING:

PACKING AND WRAPPING SHALL BE SUFFICIENT TO PROTECT AGAINST DAMAGE

eh

OR LOSS DURING SHIPMENT FROM THE SUPPLIER TO THE DESTINATION SPECI-

FIED IN THE PURCHASE ORDER. (BULK PACK IS ACCEPTABLE)

5.2

MARKING:

THE PRIMARY WRAPPING OR PACKAGING SHALL BE MARKED WITH THE TI PART

NUMBER (SEE PART NUMBER BLOCK) AND THE COUNT CONTAINED. ADDITION-

AL MARKINGS ARE PERMITTED.

Seco

REGULATORY MARKING:

EACH SEPARATE SHIPPING CARTON MUST INCLUDE MANUFACTURER'S U.L. CORD SET LABELS AFFIXED TO THE SURFACE OF THE SHIPPING CARTON, OR ON A TAG OR THE EQUIVALENT INSIDE THE CARTON. EACH SEPARATE CORD SET MUST INCLUDE MANUFACTURER'S C.S.A., LR, OR LL NUMBER PRINTED ON A DOUGHNUT-FLAG OR BRACELET-TYPE LABEL

Firma FS6-E

P)TEXIASNS IORNESLTRRUAMTEENSTS MOUSTON TEAAS

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10 A MAX AT 125 v[ ie (41 x 34) |86.0| {.32_
15 A MAX AT 125.V114 (41x30) | [1| 16}.39 |

10 A MAX AT 125v |18 (41x34) | | 116 |.32_ |

NOTE: C-O0R0D02 GROINPLY DESIGNED TO CLIP TO BODY (CABLE) OF CORD ASSY TO RESTRICT SLIPPING,
FIGURE 1

3.4 3.4.1

ME CHANT CAL RETENTION FORCE, FEMALE PLUG: 3LB MINIMUM, 20LB MAXIMUM AFTER 10 CONDITIONING CYCLES TO A MATING RECEPTACLE.

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5-146

3.9 3.1 Sele 3.1.2
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REQUIREMENTS :

PHYSICAL: : SEE FIGURE 1

PLUG: PVC 80-86A SHORE. MDUROMETER HARDINESS .. 60°C SERVICE,

CORD: =HR=AuG, 3 CONNUCTOR, TYPE SJTMEETING U/L STANDARD 62

REQUIREMENTS .

MARKING: PARTS SHALL BE MARKED WITH THE MANUFACTURER'S IDENTIFICATION,

WIRE TYPE (Sov),foe MttImeSeE SIZE URARG),AND NUMBER OF WIRES (3CONDUCTOR).

FLASH IN WELL OF RECEPTACLE CONTACT SHOULD BE RESTRICTEO TO BOTTOM 20% OF WELL

ELECTRICAL: SEE FIGURE 1 ENVIROMENTAL : STORAGE TEMPERATURE RANGE:

-400 C TO 80° Cc

= A

AMI ti

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5-145

C REVISIONS CONTINUED FROM PAGE 1

REV LTR
L N

DESCRIPTION

DATE | APPROVED

CN 453115(D)P.MC CORMICK 12/27/79

CN458407(E) ¢f.one Xtnnperer [Ady 40|-DR?

CN 469076 (E) L.WILKINSON

T | ovasseae (e)6.srttins

CN 484706 (E) Berula,

W

>

CN 489091 (E) Pave, --

CN 499203 (E) CBLOCK

CN 508766 (E) CBLOCK

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Cii424086 L. Piercey
CN433186 _F. Espinoza
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|4-2/-|7F9ZE9L-
22/78

CN 439009 REKHA SETH

SCOPE:

CN 447221 GOULFT 9-12-79

W

SEE PAGE 1.1 FOR FURTHER REVISIONS

THIS SPECIFICATION COVERS THE REQUIREMENTS FORA 3 PIN POWER CORN,

UNDERWRITERS LABORATORIES AND CSA APPROVEC.

APPLICABLE DOCUMENTS:

THE FOLLOWING DOCUMENTS OF ISSUE IN EFFECT ON THE DATE OF INVITATION

TO BID OR REQUEST FOR PROPOSAL FORM A PART OF THIS SPECIFICATION TO .

THE EXTENT SPECIFIED HEREIN. IN THE EVENT OF ANY CONFLICT BETWEEN

THIS DOCUMENT AND THE REFERENCE DOCUMENTS, THIS MOCUMENT SHALL GOVERN,

©

MIL-STD-105

4
SAMPLING PROCEDURES AND TABLES FOR INSPECTION

BY ATTRIBUTES

UL 62

FLEXIBLE CORD AND FIXTURE WIRE

Sa (Ab 8|| |) | | | | | | ee le SPECEFICATION CONTROL NRAWING FS 2 WDOOSOR EOS OSS Cee Seeeese
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| Bll AMWC' Bil2S MREC| Bis AIOWSi BL4 JORC>; BIS NE ; Bio NO ; Bi? NC | BLS NC >; Bi? NC | B20 CLEP + BSt IRSA ects SIRS ; Bos IR4 | B24 IRS | B2S IR H 2& NI | B27 RESH (| Boats ALE i Bey +5 | Bao ms » E31 GND

GROUND

RESET

+3 VOLT FPCWER

INTERRUPT ©

not connected

met caonmmected

-12 VOLTS FOWER

DIRECT MEMORY Ammess Fi? VOLTS POWER

GROLINDE

ADVANCED MEMCRY WRITE MEMORY READ

ADVANCED I/0 WRITE

I/C READ

net connected

nat connected

nat connected

net connected

not connected

PROCESSOR CLOrK (S MHz) INTERRUPT 4

INTERRUPT &

INTERRUPT 4

INTERRUFT =

INTERRUPT i

net canmected

REFRESH

ADDRESS LATCH ENABLE +35 YOLT POWER

Cs LOCK GROLINGB,

¢15 MHZ)

3.1.3 TIP Expansion Bus Sianal Tiesecriptions,

# USI CLOCK.

This signal is a hish speed

cleck with a

==FSeo=S=eSee

46.7 nsec Periad (15.0 MHz),

It has a SO% duty ecvele.

*#

PROCESSOR CLOCK. This is the sretem flock. It third of the OSC frequency and has a Periad of (3.00 MHz). The clock has a 37.4% nominal Myuty

is ane 2OO msec cvele (+-2%),

*% RESET.

This tine is used te reset ar initialize

system

Tesic

vPen

Power

up or durina a Power failure,

This

sianal is active hieh. RESET is moniterins device, During power

generated by a Pewer supply brawn auts ar omther times

that the t2 valt line drops below 11.1 volts the RESET line

ls activated immediately and returns low three milli Secaonds

after reaulation has resumed. This will

allow

for

Unattended restarts.

~e== a -~=od = fe2 =-- =eep-e

--=_ai= b=--=_----)p_--i d --_-__-_

a eee a ae at ae ee an aoeae a eames

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DATE

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WINCHESTER CONTROLLER BOARD CONNECTOR FIGURE 1

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2223220)

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ee

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ee ee ee ee ee ee ee ee ee eee ee ee ee eee ee ee ee ee ee eee ee ee ee ee ee ee

ee) a eee ee ee ee ee ee ee ee ee ee ee ee ee eee

ee ee es ee ae ee ee

IOWRITE~-., The I/0 write signal is normally driven bv

the system processor and indicates that the I/O device

addressed br the address bus should accept the data on

the data bus. This signal can be driven tyr an expansien

card after the CPU ENABLE line is asserted, This sianal

1s active low,

ISREAD-.,

The I/O read Tine is narmally driven ty the

system Processor and indicates that the I/G device

addressed 6% the address Gus should Place its data oan

the data bus. This signal can be driven by an exPansian

card after the CPL ENABLE line is asserted.

This signal

is active low.

-s_i= = == i=_--nee = e o e

REFRESHING.

This line indicates that a memory refresh

eveote is taking Place,

It is Positive true,

While this

line is asserted all bus activity should tbe isnored,

CPU

ENABLE.

This lines, when asserted low kyr an

exPansilonm card, causes the epracesser ta sive uP the

system busses and enter a wait state. This allows an

exPansian card ta implement DMA we another processar.,

When asserting this lines the exPansian card must wait

wmtil the system busses are inactive

(MWRITE,

MREAD,

IVIWRITE; IQREAG all inactive).

When deassertina CPL

ENABLE the expansion card must First wait until the bus

has been inactive for two Processor clack cveles, assert

the WAIT- Tine» deassert the CrLE ENABLE line, and

cantinue to held the WAIT- line far one addtional

mtack

mevcle.

This

will allaw the system epracessor te

carrcectivy execute its next bus crele,

foa== a=== --_ _imb--_--r= a __=0

ee ee e d

eCe ee | eee e e

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DATA O-7. These bidirectional signals carry the data

between

the precessor,s

memory, I/O, and the expansion

interface.

These lines are active high.

ADLER O-19. These lines are normally driven by the system Processor ts address memory and I/0 devices within the system. Ther can Ge driven tv an exPansier card by asserting the CFU ENABLE line low. These tines are active high. Unlvy XAO-XA? are used Far I/O addressing.

ADDRESS LATCH. This line indicates when the epracessor
is Placing a valid address on the address hus, The
address is validon the fallins edge of this sisnal.

SYSTEM FAULT-.

This signal is driven

br ane of the

exPansian

cards te interrupt the system Processor.

Its

normal use is ta indicate a system error ceaendition.

b ee e ee

WAIT~-. This signal i868 used to indicate when a device in

the system ar expansion Gus is to held or halding the

system Processor to extend the Tlensth of a memory or I/

cycle.

A stew device on the expansian kus can assert

this line low when it is addressed to extend the time it

has te complete a crcle.

An expansion card which

takes

ever the bus must manitor this line when accessing

memory or I/O devices

within

the system.

This

line,

should never be held Tew Janger than 10 PROCESSOR CLOCK

crcles.

7 Fe2SFBE e e eSsS ee e

INTERRIIPT O-4. These tines are used ta signal the

Processor that an I/O device requires attention. In the

event of several devices reauiring service at the same

OSFesee O Eeeeo

time, the device assertins the lowest numbered line aets

serviced first. These tines are active high.

MWRITE-.

The memorse write signal is normally driven

by

the srstem Pprecessor and indicates that the intarmatian

an the data bus shauld be written ta memory at the

address given on the address bus. This signal 16 active

Tow.

This signal can be driven &y an expansion card

after the CRU ENABLE line is asserted.

MREAD-. The memory read signal is normally driven tev

the system Pracessar and indicates that the memarv

addressed by the address bus shoauld be placed «en the

data bus.

This signal

can be driven by an exPansiesn

card after the CFU ENABLE line is asserted. This signal

Olefe Ueee lOleePseoceee e ee e

is active law.

==idLi=> 2 = a_a= 2 o=in__-_oea = O o n e 0 --_l---_
ssleeshmaaesteitaestentenstenstesteetesaiamtamemienetententan nn a

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DATA SYSTEMS

POR YE

DATE

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5-129

12/14/83

PART NUMBER

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7223 219-8001

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ITEM.

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COLOR sMONT TOR» 120, VAC /SPARES

COMPONENT, «

DESCRIPTION .cancesecsus Set @t ease ee ageseeeanees

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2223219-0001

MONT TOR, COLOR

FA

1669-0000-000

12/14/83

PART NUMBER

REV

222321 9-8902

B

ITEM,

QUANTITY.

0001

00001.000

DES

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COLOR MONI2T 22,O VAR C/S, PARES

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REGUCREMERT:

3.12 CONNECTORS

3.12.1 VIDEO CABLE.

THE VIDEO CABLE CONNECTOR TO THE COMPUTER SYSTEM UNITY SHALL

BE A MALE 9 PIN D SUBMINIATURE CONNECTOR AMP P/N 205204-4 OR

EQUIVALENT. THE VENDOR SHALL PROVIDE A 1 METER +/- 10CM SHIELDED

CABLE WITH THE MONITOR TERMINATED WITH THIS CONNECTOR.

THE

PINOUT IS SHOWN IN Table 3-6. THE MONITOR END OF THE VIDEQ CABLE

SHALL BE TERMINATED IN A CONNECTOR COMPATIBLE WITH THE VENDOR`'S

VIDEO CONNECTOR.

CABLE LENGTH IS MEASURED AS OVERALL LENGTH

INCLUDING CONNECTORS.

Table 3-& SYSTEM SIGNAL CONNECTOR PINOUT

PIN

SIGNAL

1 2 3 4 ) & 7 8 9
S HELL

LOGIC GROUND (TIED TO PIN 2) LOGIC GROUND (TIED TO PIN 1?

RED VIDEO

GREEN VICEO

BLUE VIDEO

NO CONNECT

NO CONNECT

>

HORIZONTAL SYNC

VERTICAL SYNC

CHASSIS (EARTH) GROUND *

3.12.2 POWER.

THE MONITOR POWER CABLE SHALL BE A 3-CONDUCTGR CABLE

TERMINATED IN A VICTOR P/N 1363-20 OR BELDEN P/N SFH-298

CONNECTOR (OR APPROVED EQUIVALENT).

ON UNITS RECEIVED AT TI

AFTER APRIL 1, £983, THE CABLE LENGTH SHALL BE A MINIMUM OF 914MM

AND MAXIMUM OF 1220MM WHEN MEASURED FROM THE EXIT POINT "JF TRE

CABLE FROM THE MONITOR ENCLOSURE TO THE END OF THE CONNECTOR.

ON

UNITS RECEIVED ON OR BEFORE APRIL 1, 1983, THE MINIMUM CABLE

LENGTH SHALL BE 600M,

AND THE MAXIMUM 1220MM.

THE THIRD

(CHASSIS GROUND) WIRE SHALL EE TERMINATED TO METAL CHASSIS GROUND

AREAS INSIDE THE MONTTOR WHICH ARE ISOLATED FROM THE MOHTTOR'S

SIGNAL GROUND BY A 15%-QHM.

.5W RESISTOR

IN PARALLEL with A

0,011F CAPACITOR.

THIS CAGLE ASSEMBLY SHALL BE INTEGRAL TO THE

UNIT 4ND PROVIDED BY THE VENEOR. ©

TS xAS INSTRUMENTS. INC.

3-75

] `ae:

DVN

DATE

NALS

A| 96214 222921 SIZE 1FSCM No

DRAWING NO

:RE

TEXAS INSTRUMENTS
out tH eee ee de

OL. ISSUE DATE

61

SCALE

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5-125

REQUIRE MENTE

Table 3-5 SERVICE CONTROLS

C

HVEORRTIIZCOANLTALHOLHDOLD

SUB BRIGHT

VERTICAL SIZE

VERTICAL LINEARITY

FOCUS

VERTICAL CENTERING

HORIZONTAL WIDTH

RGB DRIVE

RGB BACKGROUND

39.2 UPERATOR CONTROLS.

THE POSITION ENCLOSURE. GR OFF,

MONITOR SHALL HAVE SEPARATE

INTENSITY,

AND POWER ON/OFF CONTROLS LOCATED GN THE

AN INDICATOR LAMP SHALL INDICATE WHETHER

HORIZONTAL FRONT OF THE POWER IS ON

3.10 PELIABILITY

(

3.10.1 MEAN TIME BETWEEN FAILURES.

<

THE MTBF FOR THIS MODULE SHALL BE GREATER THAN 20,062 HOURS EXCLUDING THE CRT.

3.10.2 PREVENTATIVE MAINTENANCE. NO PREVENTATIVE MAINTENANCE SHALL BE REQUIRED FOR THE
MONITOR ELECTRONICS.

TEXAS HHSTRUMENTS, ING.

`..

(ee

OWN

DATE

Pestps 01/33 TEXAS INSTRUMENTS gece pate

3-20

96214 SIZE |FSCM NG

DRAWING NO

Ee SSeS

5-124

2501

|

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REGUIREMENTS

3.6.2 VIDEO INPUT IMPEDANCE.
THE HSYNC AND VSYNC INPUTS SHALL HAVE IMPEDANCES IN EXCESS OF 1500 OHMS. VIDEO INPUTS SHALL BE 1 SCHOTTKY TTL LOAD EACH AND BE TERMINATED TO GROUND BY A 1000 OHM RESISTOR.
3.6.3 VIDEO AMPLIFIER BANDWIDTH.
THE VIDEO AMPLIFIER BANDWIDTH SHALL BE A MINIMUM OF 25MHZ AT THE -3DB POINTS OF THE AMPLITUDE/FREQUENCY RESPONSE CURVE.

3.7 CRT ARCING
ADEQUATE PROTECTION SHALL BE INHERENT IN THE DESIGN OF THE MONITOR TO PRECLUDE ANY CIRCUIT DAMAGE AS & CONSEQUENCE OF CRT ARC (S).

3.8 POWER TURN ON

AFTER POWER RESULT DUE TO VERTICAL SYNC.

TURN ON, NO PERMANENT MONITOR FAILURE ANY INSTABILITY OR LOSS OF HORIZONTAL

SHAi-L AND/OR

3.8.1 POWER OFF.
WHEN THE MONITOR IS TURNED OFF, NO IMAGE SHALL REMAIN ON THRE SCREEN WHICH COULD CAUSE PHOSPHOR BURNING.

3.9 CONTROLS

3.9.1 SERVICE CONTROLS. SERVICE ADJUSTMENTS SHALL BE PROVIDED AS SHOWN IN Table iJ " Ch

TE Re LS TRUMENTSIN,C.

[a
ee <.
TEXAS INSTRUMENTS
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a

DATEPa

ce Fs

[igsue pate 01/04/85

<3cela?
ai SiZE |FSCM NO
SHIA 96214

2223214 DRAWING NO

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5-123

REQUIREMENTS

Table 3-4 VIDEO AC PARAMETERS

REF

PARAMETER

VALUE

+/-

&~- VIDEO DOT FREQUENCY
G- VIDEO DOT PULSE WIDTH C- CHARACTER BLOCK HORIZGNTAL D- CHARACTER BLOCK VERTICAL E- NUMBER OF CHARACTER LINES F- NUMBER OF CHARS/CHAR LINE G- NUMBER OF ACTIVE SCAN LINES H- TOTAL SCAN LINES
J- VERTICAL SYNC WIDTH K~ VSYNC FRONT PORCH
i~ VSYNC BACK PORCH
M- VERTICAL BLANKING INTERVAL N- ACTIVE VERTICAL DISPLAY TIME P~ TOTAL VERTICAL TIME GQ~- VERTICAL RATE
R- HSYNC WIDTH
S~ HSYNC FRONT PORCH T- HSYNC BACK PORCH
U- HORIZONTAL BLANKING INTERVAL V- ACTIVE HORIZONTAL DISPLAY TIME W- TOTAL HORIZONTAL TIME = HOR i ZONTAL RATE

18. 000

as,

eek; cele)

i%

9

12

(14)

25

80 .

300

(350)

320

(385)

0.156 (2.156)

0

(O)

6. 864 (1.664)

1.0490 (1.82)

15.60 (18. 20)

16.43 (20.02)

60.10 (49.95)

4.50

2.00

2. OO

12.00

39.99

91.99

19231

NOTE i: VALUES IN PARENTHESES APPLY TO -0002

ms

ASSEMBLY GNLY AND REFLECT VERTICAL

TIMING ADJUSTMENTS FGR SOHZ REFRESH.

NOTE 2: "REF" LETTERS REFER TO TIMING DIAGRAM

IN FIGURE 3-7.

UNit
MR z NSee DOTS SCAN LIWES ROWS COLUMNS SCAN LINES SCAN LINES MS

TEXAS INGATRUMENTS. ING.

= oa"3 r | EXAS INSTRIUMENTES Rae Lolieyen BT

OWN
ISSUE DATE

eee DATE

Battas Tenas

O1 foya, on

3-18
96214 SIZE |]FSCM NO

5-122

DRAWING NG

HORI ZONAL VIDEO

|

|

|

|

HORSIYNZCONAL
VERTICAL VIDEO

st we part~t ol R Boaaer Eee. p

|

|

| PS Se

|

| :

VERTICAL SYNC

| |

| | |

FIGURE 3-7 VIDEO TIMING DIAGRAMS
ola° y Tags Instaumenrs CIGITAL SYSTEMS DIVISION HOUSTON. TEXAS 5-121

2223219 REV

SHEET

25

3.5.3.2 BRIGHTNESS LEVEL.

WITH THE BRIGHTNESS CONTROL SET AS SPECIFIED IN THE PREVIOUS PARAGRAPH, ALL VIDEQ INPUTS ON, AND A FULL SCREEN OF WHITE REVERSE VIDEO OCCUPYING THE VIEWABLE AREA. THE SGRIGHTNESS LEVEL SHALL BE GREATER THAN 15 FOOT~-LAMBERTS IN THE CENTER OF THE SCREEN. BRIGHTNESS UNIFORMITY OVER THE ENTIER SCREEN SHALL CONFORM TO SPECIFICATIONS IN THE NEXT PARAGRAPH.

3.9. 3.43 BRIGHTNESS UNIFORMITY.

OVER THE ENTIRE VIEWABLE AREA THE BRIGHTNESS SHALL BE

CONSTANT WITHIN

+/-20%, AT A BRIGHTNESS LEVEL OF 10 FODOT-

LAMBERTS. BRIGHTNESS SHALL BE MEASURED AT A MINIMUM OF 5

LOCATIONS (CENTER AND FOUR CORNERS).

3.5.3.4 FOCUS.

THE MONTTOR SHALL EXHIBIT A SHARP FOCUS OVER THE ENTIRE

VIEWABLE AREA.

THERE WILL BE NO BLURRING OR FUZZINESS OF

INDIVIDUAL DOTS WHEN OPERATED AS SPECIFIED IN THIS DOCUMENT.

3943) Mee) LER:

UNDER NORMAL OPERATING CONDITIONS, NO PIXEL SHALL EXHIBIT

MOVEMENT GREATER THAN 17S OWN DIAMETER.

zi

3.6 SIGNAL TIMING.

THE MONITOR SHALL BE REGUIRED SPECIFIED IN Figure 3-7 AND Table 3-4.

TO OPERATE

AT THE RATES

3.6.1 SIGNAL LEVELS.

VERTICAL SYNC SHALL BE A NEGATIVE TRUE

TTL

SIGNAL.

HORIZONTAL SYNC AND THE RED/GREEN/BLUE VIDEO INPUTS SHALL ALL BE

POSITIVE TRUE TTL SIGNALS.

A TRUE OR "ON" CONDITION SHALL BE

DEFINED AS A VOLTAGE BETWEEN 2.4 AND 5. 25 VOLTS. A FALSE OR

"OFF' CONDITION IS A VOLTAGE BETWEEN 0.0 AND 0.4 VOLTS.

DRIVE

CURRENT IS PROVIDED BY A 74.5244 BUFFER ON EACH VIDEO LINE AND

HSYNC, AND BY A 74686 DEVICE ON VSYNC. THE MONITOR SHALL OPERATE

OVER THE WORST CASE OUTPUT CHARACTERISTICS FOR THESE DEVICES AS DEFINED IN THE TI TTL DATA BOOK.

|| SaeeSY Wicea eee TEXAS INSTRUMENTSIN.C.

| ea

DWN

DATE

3-16
SIZE |FSCM NC

DRAWING NO

Rev

TEXAS INSTRUMENTS
INCORPORATE L

ISSUE DATE

Te 204584

5-120

REGUTREMENTS

3.5 DISPLAYED COLORS AND BRIGHTNESS

3.5.1 COLORS
THE MONITOR WILL BE CAPABLE OF DISPLAYING THE COLORS SHOWN IN Table 3-3

Table 3-3 DISPLAYED COLORS

VIDEO INPUT RED :GREEN: BLUE

| DISPLAYED : COLOR

OFF iOFF OFF :OFF OFF iON OFF iON ON `OFF ON `OFF ON `ON ON :ON

:$! OFF ¢«= ON i OFF i ON ! OFF i ON | OFF ; ON

i BLACK i BLUE
GREEN : CYAN
RED i MAGENTA
YELLOW ` WHITE

3.5.2 COLOR ADJUSTMENT.

THE SUPPLIER SHALL ADJUST THE INTERNAL

CONTROLS OF THE MONITOR SO AS TO INSURE THE COLOR PURITY OF THE

UNIT. WITH ALL VIDEQ INPUTS ON, THE SCREEN SHALL BE A PURE WHITE

WITH NO TRACES OF OTHER COLORS DUE TO MISADJUSTMENT OF INDIVIDUAL

COLOR LEVELS: INADEQUATE DEGAUSSING OR OUT OF SPECIFICATION COLOR

CONVERGENCE.

3.5.3 BRIGHTNESS

BRIGHTNESS MEASUREMENTS SHALL BE MADE WITH A WESTON MODEL

759 FOOT-LAMBERT METER, OR EQUIVALENT.

SRIGHTNESS IS DEFINED AND

MEASURED AT THE CENTER OF THE RASTER AT A DISTANCE OF SO.& MM

FROM THE CRT FACEPLATE.

AMBIENT LIGHT SHALL BE SUCH THAT IT DOES

NOT AFECT THE BRIGHTNESS MEASUREMENTS.

3.5.3.1 BRIGHTNESS SETTING.

WITH THE FRONT PANEL BRIGHTNESS (INTENSITY) CONTROL SET AT MAXIMUM: AND NG RGB VIDEG INPUTS APPLIED (BLACK SCREEN), THE SUB--- BRIGHTNESS SERVICE CONTROL SHALL BE SET SO THAT THE BACKGROUND RASTER IS NOT VISIBLE.

--z TEXAS INSTRUMENTSIN.C.
EXAS seIarNsSTRUMENTS ISSUE OATE
T1- 204058

fAl3-s15eziap eee 3219
5-119

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PART NUMBER

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12/14/83

List of Materials

PART

NUMBER

2223106-5001

REV
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ITEM.

QUANTITY.

0003

00025.000

0004

00002.000

0005

00006.500

o011

00000.003

DESCRIPTION aes cece nsnesneseerecesaeresaecs
BULK CABLE ASSY,PARALLEL, PRINTER

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0539430-0003 221031 7-0001 2210505-0007 0972361-0003

CONTACT, PIN

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AMP

-205202-2

ST

LABEL, GBLANK,CABLE MARKER

085480~SLPF-19319-4

CABLE,SHTFLDED,25 CONDUCTORS

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0004 0005 O00T Ool1l

QUANTITY.
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DESC RIPTIONe

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221031 7-O00L 2210505-0007 2211389-0001 0972361-0003

DESCRIPT

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LABEL,BLANK,CABLE MARKER

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TAPE »FOAM, VINYL, SELF-ADH.25THK

012624-V 548

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FA FT EA PL

5-115

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12/14/83

PART NUMBER

REV

222310 6-0001

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ITEM,

QUANTITY.

0001

00001.000

0002

C0001.000

0006

0000! .000

0007

90001.000

0008

C0001 .0n0

0059

REF

0010 ool2

00091.000 REF

O101

00001.000

List of Materials

DESCRIPTIONG cs aecceceac
CAALE ASSEMBLY,» PARALLEL

s»ePRcaIsNTcEaRtet

ss =

COMPONENT... 2220401-0003 2220380-0008 041412 7-0001 2220555-0001

DESCRIETIONS

wee es ces ce cae ge eee sae eee eae

UM

CONNE»§CLUT G»O25R X420 AWG

EA

CABLE CLAMP ASSY,.400 IN. OLA. CARLE ACC FA

SEF TI- DRAWING

CONNECTOR, PLUG=36 CONTACTS

EA

LUG ,BAREs4S DEGRFE.,#4 SCREW HOLF,LACKING FA

2223107-0001

WIRE LIST PT TO PT PRL PTR CARLE ASSY

EA

?265070-0001

SPEC, PRE-PRINTED CABLE MARKER

FA

222079 7-0012

FERRULE, «175°

FA

SEE TI- DWG

2362997T-COOlL

ASSEMBLY »PACK,CABLE

FA

22231 06-5901

BULK CABLE ASSY »PARALLEL» PRINTER

FA

1650-0000-~000

12/14/83

PART NUMBER

REV

2223 106-0002

G

DESCRIPTION» 0.00 'elee's wa elec e's a's © 6 ooea's 4 ao o

CADLE ASSY,PARALLEL.PRINTERA/SO

;

ITEM,

QUANTITY.

COMPONENT...

DESGRY

BLU

Seres alee se cs

c's o ac nas oes aes sete

ooo! OOOLA 0002 0006 OOO6A 0008

00001.000 222076 7-0002

00901 .000 00001.000

222 0380-0008 22206 74-0001

REF

222310 7-O00L

CONNECTOR, PLUG,25 CONTACTS .2-POW, 22-26AG FA SFE Ti- ORAWING P2 SEE TI- ORAWING
CABLE CLAMP ASSY,.400 IN. DIA. CARLE ACC SEF TI- DRAWING
CONNECTOR »RND CA TO PANEL, PLUG,STL SHELL SEE TE- OWG Pl
SEE TI- DWG WIRE LIST PT TO PT PRL PTP CABLE ASSY

0009 0010 0013 0014 0101

REF 00001.000 00000.000 00001.000 00001 .000

2265070-0001 222 OT97-0012 041412 7-0001 2220827-0003 2223106-5002

SPEC, PRF-PRINTED CARLF MARKER
FEPRULE+.175"W SEE Ti- OWG CONNECTOR, PLUG-36 CONTACTS
CONNECTOR ,-COVER,CAP,OR HOOD SEF TI- DRAWING RULK CABLE ASSY PARALLEL 1620-0006-004

5-114

TARLE #2: RECOMMENDED PARTS LIST

Note:

This Parts List does not include incidental hardware. This hardware and any substitutions for the assemblies
listed are at the discretion of the vendor, but the completed cable meet the requirements set forth elsewhere in this drawing and must be approved by TI.

Item

Reference Desig.

Vendor

TI part #

Vendor Part #

5

Cable

Beldon Corp. P.O. Box 1331 Richmond, In, 47374

2210505-0007

9543

6

Pl

Amphenol Connector Div.
Bunker Ramo Corp. 2801 South 25th Ave. Broadview, I1, 60153

2220674-0001

157-32360

1

P2

AMP Inc. P.O. Box 3608 Harrisburg, Pa,

17105

2220767-0002

745496-2

2

Cable Clamp

AMP Inc.

2220380-0008

P.O. Box 3608

Harrisburg, Pa, 17105

745173-3

4

Marker, Cable W.H. Brady Co.

2210317-0001

SLPF-19319-4

2221 W. Campen Rd.

.

P.O. Box 2131

Milwaukee, Wi, 53201

NOTE:

Item #2 may be replaced with a foil EMI shield and thermoplastic shell per section #3.

i TCNAS Pie
Fhe 759 th

RT

~06-

ka SSUE DATE

FSCM NO

DRAWING NO 2223106

CACC A 9621 4

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TABLE #1;

WERE J.IST FOR CABLE 2223106

Vire #
l 2 3 us
5
6
7 8 9 10
It 12 13
14
15
16 17 18
19 20
21 22 23
24
25

Calor
Rlack White ked Green
Orange
Blue
White / Black Red / Black Green / Black Orange / Black
Blue / Black Black / White Red / White
Green / White
Blue / White
Black / Red White / Red Orange / Red
Blue / Red Red / Green
Orange / Green Black / White / Red White / Black / Red
Red / Black / White
Green / Black / White

Pl Pin #
l 2 3 4
5
6
7 8 9 10
11 12 13
14
32
31 36 33
19 <21l
23 25 27
29
30

P2 Pin #
1 2 3 4
5
6
7 8 9 10
ll N2 13
14
15
16 1? 18
1? 20
~ 21 22 23
24
25

Jee
C
TEXAS INSTRUMENTS
INC OR PORATION Oats Tesas
Th S919

OWN =----S--"~<CSAT

KLUNKERT 07-06-83

heenesaqe

a

`alg NO

JoRA WING NO

| 9621 4} come

5-112

*Gdl4199dS JSIMYSHLO SSJINN `SALON

We|xkee
TEx is INSTRUMENTS
¥ A 2 z -~

Vo- Afb tie

`1

J1av) dWV19 SM3YIOSNY

Y3NIVLIYSM3YDS Q3GNTOHNLIIM W3121

2d NIVUO JYIM 030104 Y3ONN WW19 S1134H30S 379¥D dW¥13 "ATSW3SSV

| | Td NIVUC JYIMOL 39

GILVON1IWUIL31GVI dWYTD MINIASG YIDIO9S1 W31£1

f|t! 1X31

WMWYyd SUBLNIYId1`*Td LYVd BIGWAN S9OTEAZZZYZ©

S,YaUNLIVANNYW)(NOLLVDTSTANIGL

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G3ddvUM GNNOYY JTav2ONY GIYNIISYIGNN 31dv) "dWV10

ISSUE DATE

`yrs C

SIZE
scale NOMIE, 5-111

CRAWING NO
ra 2223106

JePoa rts

is

Stp peplteiT " Des pi

te a

MarkIAg

The warking texts listed in Figure #1 shall be Cixed on the cable using the marker deseribed ina TT drawing 2210317,
Markicg method js optional.

3.4

favirernental

\ebtent temperature:

Speratine: 5 to 69 cdeprees C.

Sunsdgperating:

=30 to 70 dveprees C.

Relative humidity:

iv to 90% (non-condensing)

q EPe eeege)re

Ble &

Apency Requirements

raEe

ee

Cable reels within the manufacturers facility shall he marked

eay) el

per Ul 83, UL 62, CSA 22.2 no 127, CSA no 299 and CSA 329A

requirments

The cable assembly shail be UL listed under UL 478 for use

with electronic data processing units and systems. Vendor is

responsible for ottaining and maintaining UL approval of the cable assembly. All cab'es shall bear the UL listing mark.

The manufacturers identification and date
on the jacket or molded connector housing wherever convenient and clearly visable.

code shall appear portion of the cable The UL listing mark

is to be placed within 6 inches of the connector marked Pl.

4,0

QUALITY ASSURANCE PROVISIONS

4.1

Responsibility for Inspection

Unless otherwise specified in the contract or purchase order,
the supplier is responsible for the performance of all inspection requirements specified hercin. Except as otherwise
specified in the contract or order, the supplier may use his Own or any other facilities suitable for the performance of the inspection requirements specified herein, unless disapproved by the procuring activitv. The procuring activity reserved the right to perform any of the inspections set forth in the specification where such inspections are deened necessary to assure supplies and services conform to prescribed requirements.

I
jaNate

DVN

DATE

| REL OR LUNKE

07-06-

96214 SIZE |FSM NG

DRAWING NO
2223106

:REV

peecei ll[nA Texas INSTRUMENUS Fozceaage

esr] [en

ES

5-110

Bhigh EO:
Ye dey)

Connectors

Materfal: Housing and covers for Pl will be metal, and for P2 thermoplastic overmolding, UL flammability rating 94V2 or hetterc, CSA 3562 stacdard UL 478, and shall be UL recognized components. (NOTF: CSA certified components are required only
{n nrimarv circuits).

Cortacts: All contacts will be Gold Plated

surfaces.

Crimp-type pins shall be tright

the surface that the wire is crimped to.

on thetr Mating ttn plated on

Connector Current Rating: 5 Amps / Contact

Contact Resistance after Durability Testing: 5.5 maximum. Durability testing shall consist of 50
tions and removals of mating connectors.

mOhms inser-

Assembly

Shielding: Fach connector shall be continuously shielded to

conform with FCC Part 15, Subpart J, concerning EMI emmis-~-

sions of computing machines.

This may be accomplished

through the use of a metal shell to which the cable "drain"

wire is attached by means of solder lug, or through the use

of fotl surrounding it which is soldered to hoth the connector

body and the drain wire. If the foil methodis used there

must be a protective plastic cover over it.

Strain Relief: Both connectors shall be be provided with strain reltef through the use of either metal backshells Or thermoplastic backshells. If metal backshells are used, provision must be made to itnsure that the clamp does not break the outer jacket of the cable.

Dielectric Withstanding Voltage: 1000 Volts RMS minioun, 50-60 Hz.

Mechanical: Table 2 are by the same etc. ), and

If hardware other than the ones recommended in used, they must be secured to mating connectors method ( I.E. springclamps, machines screws, must be dimensionally equivalent.

Voltage Rating: 300 VAC RMS for continuous use.

C )

Sn |ee weleiee

OWN

DATE

KLUNKERT 07-06-83

TEXAS eres TS seus pate

FSCM NO

DRAWING NO "PSEKGY

fAea M9ON6E21[f4i pe [e ver d

G

The P6950

5-109

3.9

RFOUIREMENTS

"re!

Phys tcal

See Fipgttre 3 a Ll Wel eeige andes Ab bem cl.

Ele

Materfals and Constructton

Materials, finishes, and markings for each part shall be as

specified herein.

When the materials or class of materials

are not specifted, a material shall be used which will enable

the device to meet all the requirements of this drawing.

Material finishes and markings shall not blister, crack, flow,

be adversely affected when exposed to the storage, operating

or environmental conditions specified in this drawing. Marking

Shall be permanent and withstand exposure to solvent per UL

478 and CSA 22.2 No 154,

eyfae 2 ee |

Cable

(

UL Style 2464 Cable, capable of passing VW-l Vertical Flame

Test.

|

All wire & cable material used must be UL recognized and CSA certified, and must meet UL - Vw-l Flammability standards.

Capacitance between conductors: 30 picofarads / foot.
Conductors: Tinned copper, standard 24 AWG, (7 x 32), lated by PVC 0.25 mm thick nominal.

insu-

Shield: wite.

L004 coverage, aluminum polyester, number 24 drain

4

ee

OWN

OATE

SiZE JFSCM NIL:

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7-06-

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THIS IS A COMPUTER GENERATED DOCUMENT, DO NOT REVISE MANUALLY. CONTACT COMPUTER-AIDED~DOCUMENTATION GROUP.

ee laeteitontecletntaetaet sieteienienieniett Manhahs Metin cheteds demtets eekeds eles tke elt Dee ole Dole Soren Sore enon tere eke eeee Ceeken nau

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unless other- |

DATE | Texas Instruments

wise specified] DWN DUNHAM 05-14-82]

Incorporated

| SI-NETRIC

dimensions are| CHK_ M. BIEHL ____06- 09-82|

Data Systems Group

in millimeters] ENGR M.KENDEL 06-10-82|-----------~------------ $e eer eenn---

tolerance:

O | APV M.KENDFL

06-10-82]

angles +/~ 1 | QA R.CAPAM 06-10-82|

1 place +/-0.5| MFG S.BRIDGEN 06-10-82]

CABLE ASSEMBLY, PARALLEL, PRINTER

2 place ee REL MIKE WOLF 06-11- et

KLUNKFERT 07-06-83 Texas aN sees SSUE DATE

Ta. 26931

AAO

A Bes 4 e

2223106 bt

5-107

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SUGGESTED SOURCE(S) OF SUPPLY: 1. BELDEN CORPORATION
P.O. BOX 1980 RICHMOND, INDIANA 47374
2. VICTOR ELECTRIC WIRE & CABLE COQ. 618 MAIN ST. WEST WARWICK,R.I. 02893

TEXAS INSTRUMENTS PART NUMBER
2223105-0001

SOURCE 1 IF-4310

MANUFACTURER'S PART NUMBERS

SOURCE 2

SOURCE 3

TBD

( | a
Ti-gJi59-E

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RETREMENTS:

Pe SCAR: S5t FUGURE |

FABLE BG IERE ST: Gr OREO ee Mate CONSISTING GF 7 STRANOS OF #56 AWG BAPE CUPFEs WIRE OR 7 STRANDS OF =35 BARE COPPER COVERED
STEEL Wife. SHELS CONSISTSOF 4 ENDS CF #36 AWG TINNED COPPER SPIRAL WRAPFED OR BRAIDED COPPER WiRE. INTERNAL INSULATION CF POLYETHYLENE WITH OUTER JACKET AND CONNECTOR MOLDING TO 6E LiGHT TAN IN COLOR MATCHING T! COLOR NUMBER 972939-21C1. CABLE ASSEMBLY TO MEET THE REQUIREMENTS OF UL AND CSA.

3a leat

MARETNGS; PARTS OR WRAPPER SHALL BE MARKED WITH TEXAS INSTRUMENTS PART NUMBER .

Jee 3 IMPEDANCE: CABLE IMPEDANCE SHALL BE 7552 NOMIMAL.

3.1.4

CONNECTORS: BQTH ENDS OF THE SHIELDED CABLE SHALL BE TERMINATED EITHER WITH VICTOR PC-103 PHONO PLUGS OR BELDEN STYLE PHG761 SHORT STRAIGHT HANDLE PHONO PLUGS.

Cf

i Mame lCLS. 2

meme cn

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CABLE DIA. 3.81 NOM

FIGURE

[ye TExXaAs INSTRUMENTS

ra Le INCORPORATED

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2223105
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5-105

12/14/83

PART NUMBER

REV

2223100-5001

R

ITEM.

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0086

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DESCRIPTION...

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VIDEO CRT CONTROLLER,

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AUTO-INSERT

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COMPONENT... 2210759-0001

DESCRIPITON

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PCeS2tS57,QUAD,2/1 LINE SELFCT/MULTIPLEXER EA V-LIST-$157 BURN-EN U20
V-LIST-S157 BURN-IN SUBSTITUTE FOR ITEM 49 V-LIST=S157 BURN-IN

12/14/83

PART NUMBER

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2223100-8001

R

ITEM. 0001 0002

QUANTITY. 00001.000
REF

D VIENSECORIPCTRI TONC.O.N.TRSOe LCLHEC R/P+SZ F PAR REE S ERR EET PEERES

COMPONENT. 2223100-0001 2231993-0001

DESCRIPTIONGsscccesereessee
VIDEO CRT CONTROLLER 1254-3100~-060 SERVICE PACK INDFX-RMR

UM
FA EA

5-104

12/14/83

PART NUMBER

REV

2223100-5001

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List of Materials

DESGPIEL LON aeccacesc ees ets ese ieee

sca an c's 5

VIDEN CRT CONTROLLER, AUTN-INSERT

ITEM.
0076 OOT6A 00768 OOTT OOTTA JoTTS OU7AR 0079 4\ oo7TssB 00T9 OOTIA 00798 0080 QOS0A O080R 0081 OO81A 00818 0082 O032A 00821 0083 OOS3A 00838 0084 O084A 00848 0085 OO85A 00858

QUANTITY.
00000.000

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2210649-0001

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600000.000 2210740-0001

00.:00.000 2210621-0001

0C000.0N0 2210735-0001

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90000.000 2210604-0001

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DESCRLPLION

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IC¢L5125,QUAD SUS BUFFER W/3-STATE OUTPU EA V-LIST-LS125 B8URN-IN U30

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12/14/83

PART NUMBER

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2223100-5001

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COMPONENT... 2210 739-0001 2210660-C001 2210695-0001 2210721-0001 2210764-0001 2210694-0001 2210669-0001 2210662-0001 2219761-0001 2210631-0001

DESCRIPTIONS sete etet ere sere ree eects sos ss

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12/14/83

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TECHNICAL REFERENCE

SCHEMATICS AND LOGIC DRAWINGS

Section 6

SCHEMATICS AND LOGIC BRAWINGS
This section contains schematic and logic drawings applicable to the Texas Instruments Professional Computer.

Title
Motherboard, Logic Logic, Alphanumeric CRT Controller
Logic, Option RAS Logic, Graphics Video Soard Logic, Communications Board Logic, Video CRT Controller Logic, Speech Logic, Telephone Logic, 256/512k RAM Expansion Logic, 256k RAM Expansion

TI Drawing No.
2223005 2223011
2223017 2223063 2223096 2223102 2232375 2232465 2234245 2234248

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TECHNICAL REFERENCE

SYSTEM I/O MAP

Appendix A SYSTEM I/O MAP

Address Motherboard:
00000

A

00001

00002 00003

Table A-i System 1/0 Map

Device

Bit/Use

U47 Latch
U48 Input buffer
U49 Latch USO Latch

Speaker timer enable Timer 1 interrupt enable Timer 2 interrupt enable Single-density (FM) enable ©W & NFTe rack greater than 1/2
(TG43) Diskette side one enable
(FSID-) Diskette mode control (M1) Diskette mode control (MO)
4
Option jumper E1-E2 Option jumper E3-E4 Option: jumper ES~E6 Parity interrupt pending Printer port BUSY Printer port paper out Printer port printer
selected Printer port NO fault
Printer port data outputs
LED 1 OFF LED 2 OFF LED 3 OFF Parity interrupt enable Printer port not auto feed Printer port not strobe wN©S Fk n Pria nter port not
initialized

TECHNICAL REFERENCE

SYSTEM I/O MAP

Table A-1 BSyetem 12/0 Map (Continued) :

Address

Device

Bit/Use

Motherboard (Continued):

00004

US1 Latch

Diskette Diskette Diskette Diskette Diskette Diskette Diskette "evWOHNaNVA Diskette

Drive Drive Drive Drive Drive Drive Drive Drive

SELECT SELECT SELECT SELECT MOTOR MOTOR MOTOR MOTOR

AW&w N re

o0o000S-cOcCOF

Reserved

oo010 oooll

U44 8251 USAART U44 8251 USART

Data Register Control Register

00012-60013

Reserved

00014 O0015 00016 00017
00018
oco1ls
00020
O0021 oo0022
o0oc23 00024-0002F

V4S 8253 Timer

Counter 0

U4S 8253 Timer

Counter 1

U45 82853 Timer

Counter 2

U45 8253 Timer

Control register

U46 B2S5SS9A Interrupt

.

controller

f

U46 S8259A Interrupt

controller

.

FDC Command register

or RAM

FBC Track register

FDC Sector register

or RAM reset

FDC Data register

Reserved

Winchester Controller Board:

00030

Hinchester I/O port

Input: O-7

Don't care. held for handshake

Data is each
cycle.

Output: 0-7 Don't care. Data is
latched til updated.

TECHNICAL REFERENCE

SYSTEM I/O MAP

Table A-1l System 1/0 Map (Continued)

Address ooo3i

Device

Bit/Use

Winchester reset register

Read: 0 Data request
1 Input/Output 2 Command/DBata 3 Interrupt pending
(Level 6) Write: CO-7 Don't care (Any
write will do a

RESET)

Wincheater Controller Board (Continued):

00032 00033

Not used Interrupt Mask Status interrupt
enable Data interrupt
disable

Future Options: 00034-00038 0003C-0003F 00040-0C008F
Pu

Reserved

Local Area Net I/0

Reserved

*

TECHNICAL REFERENCE

SYSTEM 1/0 MAP

Table A-i System I/O Map (Continued)

Address

Device

Bit/Use

Clock and Analog Interface:

oooco

Clock/Analog Interface

QO End of conversion (EOC) (Active HIGH)
Not used (tied Low) Lightpen interrupt latch ON Battery low Switch Switch Switch &WN @A a Swiu tch WM w H

eo00ci B00C2 ooocs o00cs OCOCA
OOoCcCcB
o0o0ce oo0ocDaR OOOCE COOCF
ooo0bDO
000D1-000B7 O0O0DSs 0O0DS-OCOODF

Bo not allow light

pen interrupt (tri-state signal)

Allow light pen

interrupt (Pass

interrupt signal)

Joystick port X11

(Current sense)

Joystick port Y¥1

(Current sense) Joystick port X2

(Current sense)

Joystick port Y2

(Current sense)

Analog input 4

(SW4) (Voltage sense)

Analog input 3

(SW3) (Voltage sense)

Analog input 2

(SW2) (Voltage sense)

Analog input i

(SW1L) (Voltage sense)

Clock Control

O Address Bit

MSMS832 clock

Address Bit

MSMS832 clock

Address Address HOLD

Bit

MSMS5832

Bit k©W r MN SH5832

clock clock

WRITE

READ

uWNj whe + n or -~ 30 sec adjust

Reserved

Clock data

(low nibble only)

Reserved

TECHNICAL REFERENCE

SYSTEM I/O MAI

Table A-1 System I/O Mep (Coneluded'

Address

Device

Bi t/Use

Sync-Asyne Comm Board:

OOCEOQ-OOCES3

COMM Port

IR1

OO0E4

OCOES

OOGCES6

OCOO0E7

OCOES-OOOES

COMM Port

IR2

OOOEC

GOOED

COOEE

OOOEF

GOOFO-OOOF3

COMM Port

IRS

O00F4

OCOFS

COOFS

COOF?7

OOOFS-OOOFSB

COMM Port

Ind

QOOFC

OoOOOFD

OGOFE

OCOOFF

00100-003FF

Interrupt Acknowledge CHB command
CHB data
CHA command CHA data

Interrupt Acknowledge CHB command CHB data CHA command CHA data

Interrupt Acknowledge CHB command CHB data CHA command CHA data

Interrupt Acknowledge

CHB Command

CHB Data

"A

CHA Command

CHA Data

Available for future products

A-5/6

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TECHNICAL REFERENCE

SYSTEM MEMORY MAP

C

Table B-1. System Memory Map, Concluded

Address

Devices

DFOO1L-DFOGOF DFO1LO-DFOILF DFO2O0-DFO2F DFO3S0-DFOSF DFO40-DF7EFF DFSOO-DFSOF DF81i0 DFB1il
DFS1i2 DF813 DFB14-DFS1LF DFSB20 ( |
Other Peripherals: DFS21-DFFFF EQOQOO-E7FFF
EBOQ0O-FS3FFF
ROM Usage: FAQ000-FSPFFF
FEOQOOO-F7EFFE FROOGOO-FOFFF FAOQOO-FBFFF FCOOO-FDFFF
FEOQOOO-FFFFF

Miscellaneous input buffer Graphics RED palette
latch, write only Graphics GRN palette
latch, write only Graphics BLU palette
latch, write only Reserved Attribute latch CRT controller address register,
write only CRT Controller status register,
read only CRT Controller address register,
write only CRT Controller address register,
write only Reserved

Bit 7 Bit 6

Miscellaneous output Latch, interrupt enable >»
Miscellaneous output latch, alphanumerics screen enable

Reserved Reserved for speech storage RAM
Reserved
8K ROM space(Clock/Analog Interface)
8K ROM space(Local Area Net Option Board)
8K ROM space(Winchester Controller) 8K ROM space(Reserved) 8K ROM space, i wait state (XU62)
(motherboard) SK system ROM, 1 wait state (U63)
(motherboard)

TECHNICAL REFERENCE

SYSTEM MEMORY MAP

Appendix B SYSTEM MEMORY MAP

Table B-1 System Memory Map

Dynamic RAM:

Address

OOCOO-OFFFF LOOOO-1FFFF 20000-2FFFF 30000-3FFFF

40000-BFFFF

Devices
64-kbytes motherboard RAM 64~kbytes expansion RAM board Bank 1 64-kbytes expansion RAM board Bank 2 64-kbytes expansion RAM board Bank 3
Expansion bus memory

CRT Controller:
CO0OCO-C7FFRFF CSE000-CFFFF DOOOO-D7FFF D8S000-DDFFF
DEGOO-DE7FF DESOO~-DEFFF
DFOOO

Graphics RAM Bank A Graphics RAM Bank &B Graphics RAM Bank Cc Reserved
Active character memory Phantom character memory

Bit oO Bit 1 Bit 2 Bit 3

Miscellaneous input buffer, BLUE feedback, read only
Miscellaneous input buffer, RED feedback, read only
Miscellaneous input buffer, GREEN feedback, read only
Miscellaneous input buffer, interrupt pending, read only

TECHNICAL REFERENCE

CHARACTER SET

Appendix C CHARACTER SET

Table cC-i ASCII Control Characters From USA Standards Institute Publication X3.4-1968

ACK BEL BS CAN CR Dci1 DC2 DC3 0C4 *DEL DLE EM ENQ EOT ESC ETS ETX

acknowledge bell backspace cancel carriage return Gevice control 1 device control 2 device control 3 device control 4 delete data link escape end of medium enquiry end of transmission escape end of transmission end of text

block

FF FS GS HT LF NAK NUL RS SI so SOH « STX SUB SYN US VT

form feed file separator group separator horizontal tabulation line feed negative acknowledge null record separator shift in shift out start of heading start of text substitute synchronous idle unit separator vertical tabulation

*

Not strictly a control character

TECHNICAL REFERENCE

CHARACTER S&T

Table C-2. Numeric Cross Reference for Character Sets

La

ee ee

re

en

Decimal
0 1
2
3

Hexadecimal
00 01
02
03

Keystroke(s)
CTRL2 CTRLA
CTRLB
CTRLC

4

04

CTRLD

5

05

CTRLE

6

06

CTRLF

7,

07

CTRLG

g

08

CTRLH,

BACKSPACE,

SHIFT,

BACKSPACE

9

09

CTRLI

10

0A

CTRL RETURN,

CTRL,

LINE FEED

1

OB

CTRLK

12

oc

CTRLL

13

oD

CTRLM,

RETURN,

SHIFT RETURN

14

OE

CTRLN

15

OF

CTRLO

16

10

CTRLP

17

11

18

12

19

13

20

4

CTRLOQ
CTRLR CTRLS CTRLT

21

15

CTRLU

ASCII
Character
NUL SOH
STX
ETX
EOT ENQ
ACK
BEL
BS
HT LF
VT FF CR
SO SI DLE
0C1
DC2 DC3 Dc4 NAK

Displayed
Character

Comments

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i tt b>
ad
Be i q 6

TECHNICAL ASFERENCE

CHARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets {Continued}

Decimal
22
23
24 25
26
27

Hexadecimal
16
17
18 19
1A
1B

28

1c

29

1D

30

1E

31

1F

32

20

33

21

34

22

35

23

36

24

37

25

38

26

39

27

40

28

41

29

42

2A

43

28

Keystroke(s}
CTRLV
CTRLW
CTRL X CTRLY
CTRLZ
CTRL I, ESC,
SHIFT ESC, CTRL ESC
CTRL \ CTRL |
CTRLE6
CTRL --
CTRL SPACE, SPACE BAR, ALT SPACE, SHIFT SPACE
[ me
#
$
% &
( }
. +

ASCII Character
SYN
ETB
CAN EM
SUB
ESC

Displayed Character
om
t
Tt L
<>
+

Comments

FS

LW

GS

+

RS

Ba

US

¥

SP

Blank space

:

|

|

Exclamation point

=

=

Quotation marks

#

#

Number, Pound

$

$

Dollar sign

%

%

Percent sign

&

&

Ampersand

:

:

Apostrophe

(

{

Open parenthesis

)

}

Close parenthesis

Ww

s

Asterisk

+

+

Plus

TECHMICAL RESERENCE

CHARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

tO

ASCII

Displayed

Decimal

Hexadecimal

Keystroke(s)

Character

Character

44

2C

45

2D

'

:

'

-

;

-

46

2E

:

`

47

2F

AB

30

49

31

50

32

51

33

52

34

53

35

54

36

55

37

/

f

/

0

0

0

1

1

1

2

2

2

3

3

3

4,

4

A

5

5

5

6

6

6

7

7

7

56

38

57

39

58

3A

8

8

8

9

9

9

:

:

:

59

38

60

3C

61

3D

62

3E

63

3F

64

40)

;

;

;

<

<

<

7

=

=

>

>

>

?

?

?

@

@

@

65

41

A

A

A

66

42

B

B

B

67

43

C

C |

C

68

ad

D

D

D

Comments Comma Minus, Hyphen Period, Decimal point Slash, Virgule Zero One Two Three Four Five Six Seven . Eight Nine Colon Semicoton Less than Equals sign Greater than Question mark Commercial "`at'' A (uppercase) B {uppercase} C (uppercase) D (uppercase)

a A

FECHAICAL REFERENCE

CHARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

Ge

------

OO

eee

ASCII

Displayed

Decimal

Hexadecimal

Keystroke(s)

Character

Character

ee

Comments

69

45

E

E

E

E {uppercase}

70

46

71

47

F

F

F

F (uppercase)

G

G

G

G (uppercase)

72

48

H

H

H

H (uppercase)

73

NS)

[

]

|

| (uppercase}

74

4A

J

J

J

J (uppercase)

75

48

K

K

K

K (uppercase)

76

4C

L

L

L

L (uppercase)

rai

4D

M

M

M

M.(uppercase)

78

4E--

79

4F

N

N

N

N (uppercase)

e)

0

O

O (uppercase)

80

50.

P

P

if(uppercase)

81

51

82

52

Oi.

Q

R

R

Q

Q|{uppercase)

R°

R (uppercase)

83

63

S

S

S

> (uppercase)

84

54

T

T

T

T {uppercase)

85

55

8

U

U

U.(uppercase)

86

56

87

57

V

V

V

Vilupperesse)

Ww

Ww

Ww W(uppercase)

88

58

x

x

xX

X (uppercase)

89

59

Y

Y

Y

Y {uppercase}

90

5A

91

5B

Z

zZ

Z

Z (uppercase)

f

[

[

Open bracket

92

5C

93

5D

\

| \

]

|

\

Left slash

]

Ciose bracket

TECHNICAL REFERENCE

CMARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

Decimal! 94 95
96
97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 415 116 117 118

Hexadecimal 5E 5F
60
61 62 63 64 65 66 67 68 69 6A 6B 6C 6D 6E 6F 70 71 72 73 74 75 76

Keystroke(s} My -
"
a b Cc d e f g h I j«< k | m n Oo p q r $ t u Vv

ASCII Character
ss P a b Cc d e f
g h
j k
m n Ce) p q r 5 t u v

Displayed Character . Comments

+

Circumflex

Be

Underline

»

Graves accent

a

a (lowercase)

b

b {lowercase}

c

c (lowercase)

d

d (lowercase)

@

e (lowercase)

f

f (lowercase)

g

g (lowercase)

h

h (lowercase)

i (lowercase)

j

j lowercase)

k

k (lowercase)

i

1 (lowercase)

m

m (lowercase)

n

n (lowercase)

fe)

o (lowercase)

Dp

p (lowercase)

q

q (lowercase)

r

r (lowercase)

S

s (lowercase)

t

t (lowercase)

u

u (lowercase)

V

v (lowercase)

TECHNICAL REFERENCE

CHARACTER SET

Table C-2. Numeric Cross Reference for Character Sets (Continued}

Decimal 119 120 121 122 123 124 125 126 127
128 129
130
131 132
133 134
135
136 137 138 139
140 141
142

Hexadecimal 77 78 79 7A 7B 7C 7D 7E 7F
80 81
82
83 34
85 86
87
88 gg BA 8B
8c 8D
8E

Keystroke(s) w x y z {
}
"~ CTRL-- BACKSPACE ALT 128 ALT 129
ALT 130
ALT 131 ALT 132
ALT 133 ALT 134
ALT 135
ALT 136 ALT 137 ALT 138 ALT 139
ALT 140 ALT141.
ALT 142

ASCII Character
w Xx y z {
}
Ne DEL

Displayed Character
w x ¥ z {
}
~

Comments w {lowercase} x {lowercase) y (lowercase) z (lowercase) Open brace Vertical rule, Bar Close brace Tilde ASCII DEL

G
u
6,3
a a
a a
g
é e 8 1
f i
A

TECHNICAL REFERENCE

CHARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

Decimal!
143 144
145 146
147
148 149
150
151 152 153 154 155° 156 157 158 159 160
161
162 163 164 165 166 167

Hexadecimal
8F 90
cy 92
93
94 95
96
97 98 99 9A 9B 9C 3D 9E SF AO
Al
A2 A3 A4 A5 AG AT

Keystrokea(s)
ALT 143 ALT 144
ALT 145 ALT 146
ALT 147
ALT 148 ALT 149
ALT 150
ALT 151 ALT 152 ALT 153 ALT 154 ALT 155 ALT 156 ALT 157 ALT 158 ALT 159 ALT 160
ALT 161
ALT 162 ALT 163 ALT 164 ALT 165 ALT 166 ALT 167

ASCII Character

Displayed Character

Comments

A E

z

R
}
6

3
tf

u y

6

u

.

é

fe

;

M

Py

BR 4
f

6 G Al

fi

i

n

TECHNICAL REFERENCE

CHARACTER SET

SNe
Decimal
168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

EF

Hexadecimal

Keystroka({s}

ASCII Character

A8

ALT 168

AQ

ALT 169

AA

ALT 170

AB

ALT 171

AC

ALT 172

AD

ALT 173

AE

ALT 174

AF

ALT 175

BO

ALT 176

B1

ALT 177

B2

ALT 178

B3

ALT 179

« Ba

ALT 180

BS

ALT 181

B6

ALT 182

B7

ALT 183

B8

ALT 184

Bs

ALT 185

BA

ALT 186

BB

ALT 187

BC

ALT 188

BD

ALT 189

BE

ALT 190

BF

ALT 191

co

ALT 192

--
Displayed Character

ee
Comments

3

--

oa

%

Ye

< >

| |

II L.

TECHNICAL REFERENCE

CHARACTER SET

eee
Decimal 193 194 195 196 197 198 199 200 201 202 203 204
205 206
207 208 209 210 211 212 213 214 215 216 217

Table C-2. Numeric Cross-Reference for Character Sets (Continued)

eee
Hexadecimal C1 C2

eT
Keystroke(s)

enn

ere reese

ASCIi

Displayed

Character

Character

ALT 193

it

ALT 194

Ti

eEESOeEeEeEeEeEeEeEeeeeeeeeeeee
Comments

C3

ALT 195

C4

ALT 196

C5

ALT 197

C6

ALT 198

C7

ALT 199

C8

ALT 200

cg

ALT 201

CA

ALT 202

CB

ALT 203

cc

ALT 204

P

CO me

ALT 205

CE

ALT 206

CF

ALT 207

DO

ALT 208

D1

ALT 209

D2

ALT 210

n

D3

ALT 211

D4

ALT 212

DS

ALT 213

D6

ALT 214

D?

ALT 215

08

ALT 216

,

D9

ALT 217

TECHNICAL REFERENCE

CMARACTER SET

Table C-2. Numeric Cross-Reference for Character Sets (Continued}

a

a

eee

a

Decimal
218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242

Hexadecimal
DA DB DC DD DE DF EO E1 E2 £3 E4 E5 E6 | E7 E8 EQ EA EB | EC ED EE EF FO F1 F2

Keystroke{s)
ALT 218 ALT 219 ALT 220 ALT 221 ALT 222 ALT 223 ALT 224 ALT 225 ALT 226 ALT 227 ALT 228 ALT 229 ALT 230 ALT 231 ALT 232 ALT 233 ALT 234 ALT 235 ALT 236 ALT 237 ALT 238 ALT 239 ALT 240 ALT 241 ALT 242

ey

ASCII

Displayed

Character

Character

eng ere
Comments

x

B

r

1

z

oO

|

i

:

T

}

Q

Q

d

oo

g

é

N

=

+

2

TECHNICAL RESEREKCE

' CGMARACTER SET

Table C-2. Numeric Cross-Reference for Character Set (Concluded)

ee
Decimal
_
243 244 245 246 247 248 249 250 251 252 253 254 255 <«

Hexadecimal F3 F4 FS F6 F7 F8 FS FA FB FC FD FE FF

Keystroke{s)
a
ALT 243

ys

SSS

ASCII Character

Displayed Character

Comments

SSS

SSS

&

ALT 244

r

ALT 245

3

ALT 246

ALT 247

ALT 248

ALT 249

ALT 250

ALT 251

ALT 262

ALT 253

ALT 254

ALT 255

c-i12

TECHNICAL REFERENCE

CURRENT REQUIREMENTS

Appendix D CURRENT REQUIREMENTS

This appendix contains information on the current allocations

for the

Texas

Instruments Professional Computer.

Current requirements for the

options and the printed wiring boards are listed below.

Total current available:

*

S Volt Line 10.0 A

* 12 Volt line 4.5 A

* -S Volt line O.S A

Table D-L Current Allocations

Device Name
Motherboard CRT Controller RAM Expansion Graphics Diskette Drive Hinchester Drive WHinchester Controller Communications Modem Speech

§ Volt |oe j=.| ®

12 Volt ee [palebo ®

~12 Volt tS t- = &

eOHOkeOoNO W0D wO WFDEgNOr O FrFN rF ooOc OgOor OOe OOCD e F G Neere eoqraOCO0oOoeoocroc0eqoaoqocodnusq

D-1/2

|
ul
iii
\ sit | "f°
in 4

i

_

> OL Lee Aine © theet |wie TF

.

=~

| |

ie e ia a

REPO

=

"

Fee) v
|_|

i

|

a

.

7

al

= bal
Be
a it bo. BI. Bi

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

OUT DX,AL LOOP INIA

; Write it to 8530 until ; @ll1 registers are programmed.

.

Now to initialize channel 8B.

#
MOV SI,OFFSET PARMTB ; SI=s=Address of Chn B

MOV CX,PARMSS

Z CX=Parameter table size,

MOV OX,QE4H

; DxX=Port 1,Channel B

INIB: LODS DS: BYTE PTR[STI] >; Get byte from

OUT DX,AL

; Write it until all registers

LOOP INIB

; are programmed.

RET

COMMEX ENDP

SEJECT

parm table.
Command address. parameter table.

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

SKK KK KEKE KEKE KEKE KKK KEKE EKER RR KKK KEE REE KEKE KERR KEKE KEE KEE KEKE REKEKEKEEKKEKKKE

:

This area contains the initialization parameters for channels A and 8B

3

of port 1.

HK KIRKE KEK KKK K KER REE KKK KKK KEK KER KR KKK RIKER KEK ERK IKE KKK KKK KKREKKE EKER ERKEKKER

#
; Initialization parameters for channel A.

PARMTA

LABEL NEAR

DB O9

; Select WRS code.

DB 11000000B

; Reset 8530.

DB 11

; Select WRII1 code.

DB CLOLOGIOR

; Rev clock=Baud rate generator.

; Xmt clock=Baud rate generator.

DB 14

>; Select WR14.

DB OCOGO01LIB

; Enable baud rate generator.

DB 12 DB 6

; Select WR12. >; Baud rate (low byte)= 9600 baud.

DB 13 DB O

+; Select WR13. + Baud rate (high byte)= 9600 baud.

Da 15 DB O

* Select WR1S. * Disable external status interrupts.

BB 1 DB O

>; Select WR1. >; Bisable ail other interrupts.

DB 3

:; Select WR3.

DS 010000018

; Rev=7 bits of data + parity bit.

DB 4

; Select WR4.

DB 010001108

* x16 clock input,l

*; even parity enabled.
DB S° ; Select WRS.

stop bit,

DB 101010108

: Turn on DTR and RTS,

> Transmit enable,

; Xmt=7 bits of data + parity bit.

PARMAS EQU S-PARMTA

i
- Jnitialization parameters for channel B.

PARMTB DB 15 DB OO DB O1 DB OO
PARMBS

LABEL NEAR ; Select WRIS. Disable external
4 TM
> Select WR1. ; Disable all other EQU S$-PARNMTB

status interrupts. interrupts.

SEJECT

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

Appendix E

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

Control and Status signals

Listed below are the RS232-C

control

and status

signals,

with

corresponding 8530 functions used to control and monitor them.

table is a summary of information available from the sync-asyncec

board schematic.

the This comm

Table E-1 RS232-C Control and Status signals

ee

ee

ee

ee

ee ee

ee Oe ee ee ee

ee

ee

ee ee ee ee ee

oe ee

ee

ee

ee

ee ee ee ee

ee

ee

ee

Oe ee ee

ee

ee ee

ee

RS232-C

Pin

83530

Accessed

Signal

Number

Function

through

pata TermRei adyn(DaTR)l 200 DTRA

ChanA,nWReS,lBit

Request-to-Send (RTS)

4

RTSA

Channel A, WRS, Bit

Data Set Ready (DSR)

6

DCDA

chante B, RRO, Bit

Data Carrier Detect (DCD)

B

DCDA

i

Channel A, RRO, Bit

Clear-To-Send (cTS)

5

CTSA

Channel A, RRO, Bit

Ring Indicator (RI)

22

CTSB

Channel 8, RRO, Bit

Speed Selector (CH)

Tii23

DTRB

Channel 8B, WRS, Bit

Speed Indicator (CI)

12

SYNCS

Channel 8, RRO, Bit

--

eee

eee eee

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

SERRORPRINT SXREF p RRR RHE KEKE KKK KEK RE KK IK KIRKE

KKK HIKE KKK KEKE KEK KEKE

KEE KEKE KEKE

KEKE KEK KKK

; TITLE

- COMMEX - Example of Asyncec communications

; COMPUTER - 8088 ASSEMBLY LANGUAGE

, ABSTRACT - This a sample program showing typical initialization of the TIPC communications board in asynchronous, polled mode.

RAE KKKKEKKEKRKEEEKEKEKKEEKEKEKREKEKREKREKREEKKEREEKKR EREK EKREE E RKE EKKEKKKEE EKKR KERKKEKR KEEK

NAME COMMEX

STITLE(COMMEX - ASYNC COMMUNICATIONS EXAMPLE)

SEJECT MOeeeSAe SSL e ALE Se AS SS ES SES S ESES S SES SE SEL SS ES SSE S SESS L SSS SE SS SS ECS SA LES S ES LSS So

;

PUBLIC DEFINITIONS

KEKE KKEKEKEKREKEREKKKER EERE KEEEEKEEEKEE EE E KEEKREE K R KERK EKE EREKE EKEKKRE KEKK KEK KKEK K KER

PUBLIC COMMEX

SEJECT SHREK KEE KEK EER KEK RIK EK KER EKER KEKE KEE REE KEKE EIR REE KEK EK KEK KEKE KEEEKRKEEKKKE KEKE

; LOCAL CONSTANTS SRK IR KHIR KK IIIT KI KEK IK EMI KR KKK IKK RK ERK IKI KEK EEK KEK KK EEK IKKE KEK KEKE EK KKK

PiCMDA EQU OE6H ; PORT 1, CHANNEL A COMMAND ADDRESS.

PICMDB EQU OF4H ; PORT 1, CHANNEL 8 COMMAND ADDRESS.

SEJECT

<

BIOCODE SEGMENT BYTE PUBLIC « ASSUME CS: BIOCODE,DS: BIOCODE
Sie KKK KKK KKK KKK IKI KEKE KEE RE KEE KKK KKK KERR KKK KEK KK KEKE KK ERK EK KEK KEKE KEKKEKEKEK

; 8530 Initialization Routine

This routine initializes Port 1 according to a table of initialization

;

parameters stored in PARMST.

PARMST contains an image of the contents

;

of the various 8530 registers. The contents of each register is pre-

;

ceeded by the number of the register itself. This number is used to

F

select the appropriate register on the 8530.

; This ;

initialization programs the port for asynchronous, polled

operations where all interrupts from channel A (i.e., receive,

transmit and external status interrupts) and channel B (i.e., external

status interrupts) are disabled.

The software is to poll read

register RRO in channel A to determine when data has been received

and whether transmission of data has completed.

KKK KEKE KEE KKK EK KK KEK KEK KE KER KEKE EK KER KEKE KKK KKK EK KEKE KEE EKER KE EKKK KKK KEKRKEKEKE ~-OMMEX PROC NEAR

F

3

First, the 8$30 channel A is initialized.

MOV MOV MOV (NIA:

SI,OFFSET DX,CE6H CX,PARMAS
LODS DS:

PARMTA ; Sf=Address of Chn A

>; DX=Port 1,Channel A Command

; CX=Parameter table size.

BYTE PTR[SI]

; Get byte from

parm table. address.
parameter table.

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

* KHKKK KKK
P

KEK KE KKK KEKE ERK

KIRKE KK EKER KKK KEKE KEKE KKK ERE KERR EK KKKKEKKKKKKKEKS

8S30 Receive Character Routine

This
7BW''te*1
8530

routine receive

is called to read a single received character from the

receive fifo.

If no character is available in the fifo,

this routine waits until a character is received before returning to

the caller.

a KKKKEKKKEKKEEKEKK
f

KEE KEKE KEKE

KEKE

KEKE

KEK KEKE

KEKE KKK

KKKEKEKKKKEKEK

READCH PROC NEAR

MOV DX ,CEG6GH

; DX=Port 1, Chn A, command address.

TRYRAG: IN AL,DX

>; Read RRO contents.

AND AL,GOGOOQOO01B ;Q: Any characters in rev fifo ?

JZ TRYRAG

; No, try again.

MOV DX ,OE7H

: Yes, DX=data port address.

IN AL,DX

; AL=character received.

RET

READCH ENDP

SEJECT

KKK

KKK

KKK KS

TECHNICAL REFERENCE

ASYNCHRONOUS COMMUNICATIONS SAMPLE PROGRAM

KR EKER KEKE KEKE KEKE ERE KEE RR KER EEK KEK KKK EKER KEK KEKE KKK EK KEE 8530 Transmit Character Routine

EKK ERE EK KEKE KK

This routine is called to write a single character (in AL register) to

the 8530 for transmission.

If a character is currently being transmitted

this routine waits until transmission of that character completes before

attempting to transmit the next character.

KK RIK IKK IR KK IK KK IKK EEK ER KERRI IKK KK IIH KE KEIR

fRITEC PROC NEAR

MOV DX,OEG6GH

; DX=Port 1, Chn A, command address.

-RYXAG: IN AL,DX

> Read RRO contents.

AND AL,OOCOOIOOB

;Q: Character being transmitted ?

JZ TRYXAG

; Yes, try again.

MOV DX ,GE7H

; No, DOX=data port address.

OUT DX,AL

>; AL=character received.

RET

fRITEC ENDP

STOCODE ENDS

ERE KET

REE KEE EK EKEES

TECHNICAL REFERENCE

MODEM SAMPLE ROUTINES.

Appendix F MODEM SAMPLE ROUTINES

RCNTL

SKK IKE KE KKK KKK KKK KKK EK KKK KEK EK KEK KK KEK KEKE KEKE KEE KER EE KER

; RCNTL - This subroutine determines whether a modem is

installed in port 1 and if so, activates the

* F

RCNTL signal to initiate the modem Control Mode.

SKK KK KKK KKK KR KEK KEKE KEKE KEKE KEK KK REE KEK KKK KEKE KEK EKKREKEEKKK EEK

RCNTL PROC

NEAR

MOV

DX, OGE4H

MOV

AL,GS

; DX = PORT L CHANNEL 8 ADDRESS. >; WRS SELECT.

OUT

DX ,AL

; SELECT REGISTER 5S.

MOV

AL ,0O2

ouT

DX ,AL

; TURN ON RCNTL (RTS IN CHANNEL 8).

:
`
LOOP:
RCNTL

NOH TO DETERMINE IF MODEM IS INSTALLED.

MOV MOV ouT IN TEST JZ RET ENDP

DX , OOEGH AL,10H DX, AL AL, DX AL,O00i100C00B LOOP

; DX = PORT 1 CHANNEL A ADDRESS. ; RESET EXTERNAL STATUS INTERRUPTS.

;

«

; READ RRO.

:Q: IS ACNTL (SYNCA) ACTIVE ? ; NO, CONTINUE TO LOOK FOR ACNTL. ; YES, RETURN TO CALLER IN CONTROL

MODE.

TECHNICAL REFERENCE

MODEM SAMPLE ROUTINES

DIAGST

SKK IKK ERE KKK ERK KR KEK KKK IK KEK KEKE EK KEKE EE REEKEREKKEKEE

>; DIAGST - This routine requests the diagnostics status from

the modem and returns the result in register AL.

It is assumed that the Zilog 8530 has been previously

initialized and that the modem has been placed in
S=SmSo
Control Mode.

sRKEKKEKEKEREKKKEKEEKRKKEKKEKEEKEKEKEEKKEKREKERKEKEKKEKRKEKEKRKEREKEKERKEKEE

DIAGST PROC

NEAR

MOV

DX ,O0E7H

DX

PORT 1, CHANNEL A DATA PORT ADDRESS.

MOV

AL, 'D'

AL i|e DIAGNOSTIC COMMAND CODE.

OUT

DX ,AL

REQUEST MODEM DIAGNOSTICS STATUS.

LOOP;

MOV

DX , OCE6GH

DX =PORT 1, CHANNEL A COMMAND ADDRESS.

IN

AL, DX

READ CHANNEL A'S RRO.

TEST

AL,OOQOoocOCcOI1SB

Q: HAS A CHARACTER ARRIVED FROM MODEM ?

JZ

LOOP

NO, WAIT FOR COMMAND RESPONSE.

MOV

DX ,COE7H

YES, DX = PORT 1 DATA PORT ADDRESS.

IN

AL ,DX

READ DATA FROM RCV FIFO.

RET

RETURN WITH STATUS IN AL.

DIAGST ENDP

TECHNICAL REFERENCE

MODEM

SAMPLE

= r

i

ROUTINES

DIALER

RRR KK EK KEE EKER KKK KER EKER EKER KERRIER KEKE EK RK KKEKKEKE

+ DIALER - This routine dials a typical phone number. [t

;

does not monitor the progress of the call and

it assumes the Zilog 6530 has been previously

initialized and that the modem has been placed

in Control Mode.
=BSeb

:
+ TM
pK

The phone number to be dialed is contained in
a buffer (phonum) and is terminated by a null. RR KEKE IKKE KKK KEKE KR KEKK KEKE KEK KEE KKK KEK KKK KKKEKEKKE KEKE

DIALER

PROC

NEAR

MOV

DX ,OOE7KH

7 DX = PORT 1, CHANNEL A DATA

MOV

DOY,OFFSET PHONUM ; DI=ADDRESS OF PHONE NUMBER

MOV

AL ae le

;Use T for touch tone

OUT

BoX,AL

;Transmit - command to modem

PORT ADDRES: BUFFER.

+

Nest send the strip of telephone numbers

LOOP:
F
SENDPT:
; ; ? LOOP 1:
DIALER

MOV

AL,{DI]

XOR

AL,AL

JE

SENDPT

OUT

DX,AL

INC

DI

IMP

Loop

> GET PHONE NUMBER DIGIT.

°Q: END OF PHONE NUMBER ?

> YES, SEND PHONE NUMBER TERMINATOR.

; NO, SEND DIGIT TO MODEM.

; POINT TO NEXT DIGIT.

; CONTINUE IN LOOP.

?

MOV

AL,'X?

ouT

DX,AL

; AL = PHONE NUMBER TERMINATOR COMMAND. ; SEND TO MODEM.

NOW TO WAIT FOR THE DIAL COMMAND COMPLETION.

AL RETURNS THE STATUS OF THE DIAL COMMAND.

MOV

DX , OOZEGH

; OX =PORT 1, CHANNEL A COMMAND ADDRESS.

IN

AL ,DX

; READ CHANNEL A`S RRO.

TEST

AL ,cogOoCcOOLB

;Q: HAS A CHARACTER ARRIVED FROM MODEM ?

JZ

LOOP

i; NO, WAIT FOR COMMAND RESPONSE.

MOV

DX ,OOE7H

> YES, DX = PORT 1 DATA PORT ADDRESS.

IN

AL ,DX

> READ DATA FROM RCV FIFO.

RET

ENDP

F-3/4

ont ee i oe `hey at

Bili" s weet AW

eantal

°

_

a

al

) tri ee

Fd

* it

TECHNICAL REFERENCE

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

Appendix G BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

Appendix G gives a sample source program that could be in the boot

sector.

This example is excerpted from the MS-BOS V1.16 boot sector.

G-i

TETeCaHrNIeCa A| L REFERENCE

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

pRKKEKKERKER KKK EER KERR KR REE KEK KERR EKER EERE KEKE KEE KEKE EK KEE KEK KK KE KEK EKERKEKREKEKEK

TITLE

- BOOT -

SAMPLE BOOT ROUTINE FOR THE TI PROFESSIONAL COMPUTER

ABSTRACT ~ This routine is responsible for loading the system files

from the disk.

This routine resides in the `boot' sector

(track 0 sector 1) of the disk which is loaded at absolute

=SSSBD8ese6

location OCOGOH boot code in the system ROM and then executed.

5 RIK KR KK RIOR IR IRIE RI RR RIO IR IR ITOK IRAE ERIE KEK RAK IK RN KAMER KEE EKER

NAME

BOOT

TITLE

TIPC BOOT LOGIC)

PAGE

KEKE

gH
;

KK RIKKI KR IRI

KR I III
LOCAL

IK IKK

KIKI KR EK EKER KEK II

CONSTANTS

KE KRM KEKE KRK RE KKK KE KEEK

pK HH

KK IRI

RR IR KKK KKK KICK IR TOK IR IRI KTS ITT IKI

KIKI EEK KREME KKK KAKA EKE

ta

VERS

EQU

0

REV

* EQU

0

; Current version of BOOT logic , Revision level

cR

EQU

CDH

LF

© gQU-

OAH

pe
> WINCHESTER disk

ee

re

eet

wm

me

nw

we

eee

mee

we

eee

DIT (Disk Interface Table) equates

ewe

ee

eee

eee

eee

eee

F
IITSTRC
IITDIR IITSEC JITTRK IITCYL XITDSK JITERR IITWRC JEITPRC
JITSTP MITBUR
SITSTRC

STRUC

DD

0

DW

S12

DB

17

DB

"

DB §

"4153

|

ODB

iL

DK

64

OW

64

DB

1GO000CO0B

ODS

it

DH
ENDS

0000

PAGE

> Disk Interface Routine vector (dword) +; Sector size in bytes (word) ; Track size in sectors (byte} > Cylinder size in tracks (byte) > Disk size in cylinders (BYTE) >; Maximum number of error' retries , reduced write current ; Write pre-comp threshold cylinder
- Step option
; Error burst length
, reserved for expansion

ROM BIOS interface vectors:

ELINT EQU
RTINT EQU
EYINT EQU RTINT EQU AMINT EQU SKINT EQU LKINT EQU
ONINT EQU

48HTM
49H

4AH

4BH

4CH

|

4DH

4EH

4FH

, System beeper I/O and general ROM interface
; Screen 1/0
; Keyboard I/0 ; Parailel port I/0 ; Analog Input/Clock If/o ; Floppy disk I/o > Time-of-day clock I/o
>; System configuration

TECHNICAL REFERENCE

qa) KHoOsT BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

"

xhRRLARKXKRES

;

Se

Oo

ee

ee eee

eee oat ho

: FIXED ROM DATA AREA

(absolute offsets from absolute 0)

, These equations define the ROM communications area, containing data;

P

that must be accessed by both Ene pars and user/application. fh hia

:

This data is accessed from the `user' program by setting DS .2..Q,4

:

DSADDR DSSIZR
DSADDG
DSSIZO
DSADD2 DSSIZ2 DSADD4
DSS1IZ4
DSADD6
DSSIZ6 DSADDS DSSIZB
MEMSIZ
pom
; DISK

EQU

4x*60H

EQU

4*60H+2

EQU

4*61H

EQU

4*61H+2

EQU

4%*62H

EQU EQU

4x*62H+2 4*63H

EQU

4*63H+2

EQU

4*64H

EQU

4*64H+2

EQU

4*6S5H

EQU

4*6S5H+2

EQU

4*x66H

rr

en ee

DSR OPERATION CODES

; (WORD) > (WORD)
; (WORD)
; (WORD)
(WORD) (WORD) (WORD)
(WORD)
(WORD)
(AORD) (WORD) (WORD)
(WORD)
en

pointer to DS for ova en ROM. (ROMDAT) size of DS for System. ROM (ROMDAT )
pointer to DS for ROM.at ROMGOD: 0000
size of DS for ROM at ROMCQD;0000

pointer to DS for ROM at ROMCQD:2000

size of DS for ROM at ROMCOD: 2060 pointer to DS for ROM at ROMCOD:4000

size of DS for ROM at ROMCOD: 4000
pointer to DS for ROM at RONGOD: 6000:

size of DS for ROM at -ROMCOD:-£000

pointer to BS for ROM at ROMCOD: 8000

size of DS for ROM at, ROMCOD:: 8000

:

memory size (number of 16- byte, blocks.)

ee

ee

ee

ees

\ eapetioy,

`
DKRSET EQU

DKSTAT EQU

DKREAD

EQU

DKWRIT EQU

DKVERF EQU

DKVRFY EQU

DKSSTA EQU

DKFSET EQU

DKXSET EQU

DKRDIT EQU

DKKMOT EQU

DKBADC EQU DSI

0 i
2
3 A 6
7 8 9 10 11 12 CIC

.
Reset disk system, drive parms must..be -preset

; Get disk status in (al)

-

qe tj

; Read sectors into memory

eis

Tea

; Write memory to disk sectors,

Ae

> Verify cre on disk sectors

»

Cre sae

Verify memory against disk sectors ft koe

; Get disk status for pre- retry. (if any) as:

; Set UNIT & standard DIT for a. drive ,. aie

7 Set UNIT & DIT address for a, drive .5 «=~ -«:

» Return DIT address for drive.

"

; Turn off Floppy Disk Motors

Bs

; Old >= this is a bad command...

Ts.

IIICIOIIICIUISICIICIIUICIITICITISICIGIIICIGICITII IIIT IOITC TOTTI TOR IIA A

i

IO segment - defines load address and entry point for BIOS

Io
Iosys Iosys
?
Io
CODE

SEGMENT AT 40H
ASSUME cCS:I0

absolute location 400H

PROC ENDP
ENDS
PAGE SEGMENT
ASSUME

FAR
AT 0000
CS:CODE,

; IO0.S¥S loaded here (40:0000).. Sy

aAet

oe

y

Absolute location O000H

Ol:

DS:CODE, SS:CODE, ES:CODE

"ery

a

IgE

3

UOr

HIoOges eed

UN

:

WC}

UCR 7

TECHNICAL REFERENCE
> ph ad

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

SRKEKKEKKEKEEKEEKKEEREERKKREREKREKEKEKEEKKEKEKEKRKKEKREREKEKRKEREKEEKEKEERKEKEKKREKEKKEEKEKE YSrate

Data area for ROM definitions

( )|

OIG

III ICICI

ICICI

ICICI TIT ICTIIOI OTRO TIT IT 6

`ORG
OLDRMD LABEL

400H
HORD

>; Initial location of ROM data area

;

"ft

IOsIz

ROMDAT

aes EQU
ORG LABEL ORG

7
L200H BYTE L200H+13CH

> Number of sectors in
; COLDRMD+7*512) ; Location of rom data

I0.SYS area

MOVDST EQU

(ROMDAT-OLDRMD)/1i6

RKKKEKKKEKEKEEKKEKKEEE KEE KKK KEKE KKK EKER EEE KKK EE KEKE KEKE KEE KEKE KEE EKKEEKKKKKKEK

F

MODULE ENTRY POINT

EK KRKE KEKE KEKE KEKE KEE KK KEKE KKK KEKE KEKE KK EKER KEKE ER EEK EK KKK KEKEK KEK KKEKREK KEK KEKEKEKEKER

* #
BOOT

ORG PROC JMP

OcOO0H FAR '. BOOTST

, Entry point for boot logic

;

ee

= ee

eee

ee

ee

eee

ee

eee

i

ee

ee

a

'

HEADER DATA AREA

trom terroewr e ere rtm eee nr rr rr nr ere en ee ee eee eee

ORG

OCO03H

; Always start here

File access table - Shows the loader where to find I0.8yYSs

IOSEC

BS

8

IOTRK

DB

8)

IOHEAD" BB *** *Q fs" 7

; 2&4 side 40 track load sector >; l side 40 track load track ; £ side 40 track load head

;

:

:

;

DSKTYP

THE - FOLLOWING SYTE MUST BE SET UP BY THE FORMAT COMMAND TO
INDICATE "tHE DRIVE TYPE FOR WHICH THE DISK IS FORMATTED.
THE PERMISSTBLE VALUES ARE 0-3 WHICH CORRESPOND WITH THE
FLOPPY DISK TYPE.

DB Br OOuse 8 ceo

; Disk formatted type

BOODRV
;

DB

OC...

SCARE wire

:

. » WINCHESTER DIT

,

aS

ug

e a

4INDIT DITSTRCE,.<> 454 24, 444°

>; Storage for boot drive
; 18 BYTES LONG

z

ote

SIGNON..

eal ae a

~ TPs hw tI

5

DB...,.. .-CA,LF,' BOOT. V'

DB

VERS /10+¢'G','.',VERS MOD 10+'0O' ,REV+'9'

DB

* (e) 1983 Texas Instruments, Inc.',0

number

HEISEI

PAGE

rw OY

I

GCI ICGSIIO OIG CIISCI ISI TOIT

Cavin ae

Gots Sacks

TOIIOEI OITA

ISITE ITO II TCI TO IIE

ot9N + *OC 129

TECHNICAL REFERENCE

ho BROS 7 BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

oh aS Eg Se

t

DISK BOOT LOGIC - ROMDAT
address 400H) to its

is moved

from

its

initial

-

"owt

cN

location, (absolute

working location under MSDOS (abs sQOlute addre:

L200H).

This

found, it can

code is
perform

called (FAR) by
a RETurn to let

the
the

ROM.

If an error is

ROM handle it in the,.

game manner as the other boot-time errors.

'

INPUT:

BL

Floppy drive from which to attempt the boot

stack is set up below this code by the ROM

ord AS Gk

BOOTST:

MOV CALL

SI,OFFSET SIGNON; Signon the boot sector
MSG

First, move the ROM gata area out of the way.

BOO2: BOO4:

PUSH MOV MOV MOV MOV MOV MOV OR JINZ SUB JMP
MOV SHL ADD SUB MOV MOV MOV MOV ADD

ES
AX,CS
DS,AX ES,AX BOODRV,BL BX, DSADDe AX, [BX] AX,AX BOO4 BX,4 BOO2

the ROM's ES
that CS = CODE = OO0C0H)

= CS = COpE = QOOOH

= CS = CODE = OOOOH | save boot drive

Bars

2 TEE

RESe[LH

Point to last possible Ge t data pointer
7Q: Data area in use?

rom data area "point eG

F XY: Jump and cale data length.-..-,

eo

* f

N:;

Point

to next

data area pointer

a t

And check it

= :

=

CL,4 AX ,cL
AX, [BX+2]
AX,offset Cx ,AX
SI,offset DiI ,offset BP ,CX BP ,DI

. ¥ * ` a F
OLDRMND;
,
OLDRMD; WALLY
*
`

Convert

dsaddX

pointer

be ial

aink, an ¥

= J

to absolute-addre

And add in the last Gata area length

Subtract the original location

Results in total length to."move -

DS:SI = source for the. move

ES:DI = destination for the move

Get length of move into BP

cor:

+ ROMDAT = lowest avaflable memory

BOOS:

MOV CMP
JE
ADD ADB DEC DEC sTp cui REP CLO MOV
CMP

DX,DS: word ptr DSADDR BX, (offset ROMDAT/16)
BOO7
SI ,cx DY ,cx SI BI

: Pick up the ROMDAT pointer

; Q: Has the move already taken plac

;

(True if ROM is retrying the boo

K

Y: Then skip the move Bipoe 1 ae

; N: Then do the move :

; Do the move in reverse in case ROM

; area is larger than move' Yength.

; © relative: \oF_*

nC

> O- relativei {..) '

gO

HOVSS BX, DSADDR
word ptr [BX},0000

`; Protect the move

sbi fat

se 2 fer fF

Do

the-mov-ie: .

BRKR e ES

RESET =

a

*

eéfe#

STRING

DIRECTION

a

|

ter

Set

up the rest

- start

with

OSA

>; 7 4 Q: ROM's DSADDx = zero ?

TECHNICAL REFERENCE

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

BOOG6;:
SS
BOO?7:

7

ae

ADD

CMP sae One
ADD
JMP

STI

BOO6 word ptr [BX],MOVDST
BX,DSADDS BOO7
BX,4
SHORT BOOS

a

N: Not installed, go to next one

;;;

Y: Then adjust it

ar

73+ Q: Are we all done ?

AH e

Y¥: Continue with boot

sper N: Point to the next ROM''s

>7? &nd loop for next one

DSADDx

;7? Shields down

;

HERE ROMDAT HAS BEEN MOVED AND SP CONTAINS LOWEST AVAILABLE MEM ADDRESS

HS

TELL DSR ABOUT THIS DISK TYPE

*

MOV

DL, BOODRV

MOV

AL, DSKTYP

MOV

AH, DKFSET

INT

DSK INT

; Drive number
; Get the disk formatted type , Set the floppy DIT opcode ; Go do it.

;

Set up the WINCHESTER if it is installed.

MOV OR JZ
PUSH
MOV
MOV MOV -, CALL.
"pop
loOoT20:

AX,DS:WORD PTR DPSADB4 AX, AX

BOOT20

ES

*

ES, AX

SI,OFFSET WINDIT+¢4 AH,@

-§S: DWORD PTR OO00
ES

-check for winchester

*Q; winchester installed? , N; jump

> 3 save BS
;get winchester ROM ES

;get pointer to new DIT

,Copy and<set new winchester DIT

;call the winchester ROM

;retrieve ES

:

Load IO.SYS first -~ 7 sectors (3.5K) loaded, have to miss the ROM data

If a disk error occurs,

it

returns to the caller for error handling

the routine DKBOOT in the System ROM).

(the caller

is assumed

to be

area

MOV MOV MOV MOV
KOV INT JB MOV MOV JMP
register
IBOOT : POP

BX,offset OLDRMD CX,word ptr IOSEC DH, IOHEAD OL, HOODRV
AX, DKREAD*2S56+IOSIZ DSKINT NOBOOT BL,DL AX, BP Iosys

, Transfer + Starting F ... and

offset (ES already set) at proper track and sector head

>; From boot disk.

; 7 sectors

; Select disk read function ; Bisk DSR

; Ff error, die

; Tell BIOS init about the boot drive
> And, the lowest available address , Else, go to BIOS init code

AH contains an error code to be reported by the ROM

ES

, Restore original ES before ROM gets at it

G-6

TECHNICAL REFERENCE

BOOT ROUTINE AND SAMPLE ASSEMBLY `CODE

MOV

OS ,DS:word ptr DSADDR

; And point DS at the a} ROMDAT

BOOT

RET ENDP

FAR Return to DKBOOT

PAGE

i> 7

=

_

BROCCO

IIIT

SITIO

IIIT IIE IORI R AIR RI RRR EE

:

MSG - Output string of characters in the current CS to' the CRT.

The string should be terminated with a zero byte.

;

INPUT:

SI = offset of string in current cs

:

OUTPUT: (screen)

;

USED:

AX,STI

MSG MSGO
MSG1: MSG CODLEN CODFIL
CODE

PROC
LODS OR INZ RET MOV INT SMP ENDP
EQU EQU DB
DB DW
ENDS END

NEAR

cS:byte ptr EE
AL,AL MSGL
AH, CRTIWTY CRTINT MSGO

the char

7 aes a

Q: Last char?

alna aay

N: Jump and print it. -

Y: **x* RETURN kee

Else print it"
And loop

| Er Eitass

r

ot

ss

$-f00T S12~CODLEN-4 CODFIL DUP (0)
tlie' OOOGH

LENGTH OF THE CODE ~= °°.

TOTAL SPACE

SPACE AVAIL FILLER

FOR cope

Disk Boot
4 =

identifier sector CRC

"s iy Be
(Calculated
Te

<
by a "utility)

G-7

1sth2.on7 YQJ@HCLae aa> ©

ad

--_

TECHNICAL REFERENC

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE

The following pages show a sample assembly code.
;, & 2048 byte ROM at address F400:6c000.

This code will set up

DATASEIQUZ

;ROHDS >ROMDS »>ROMDS ROMDS -ROMDS

EQU EQU EQU EQU EQU

30H
184H 1@8H 18cCH 192H 196H

;length of required data area ;can be zero but must be multiple of 16 ;for ROM at F400:0000 ;for ROM at F40060:2000
;for ROM at F400:4000 >for ROM at F400:6000
;for ROM at F400:8000 (main board)

#
CODE

SEGMENT AT OF400H

ASSUME CS:CODE

ORG

6000H

a F
> ROM HEADER

* F
OW DW
DB MSGBEG BB
DB

2048
ENTRY MSGLEN ODH , OAH *V1.23 XMPROM,

DB MSGLEN EQU

example ROM ODH , OAH $-MSGBEG

;ROM size

;entry point address

;message length

,;carriage return, line feed

;version, 6-character name,

;

message

;Carriage return, line feed

J
; ENTRY POINT FOR POWERUP

a f

«

ENTRY

PUSH

BX

PUSH

DX

PUSH

SI

PUSH

DS

" F
, ALLOCATE OPTION ROM DATA

* f

XOR

AX ,AX

MOV

DS , AX

HOV

BX, i80H

CODE AREA

MOV

MOV

SHL

ENTOO:

ABD

ADD

CMP

JINZ

SHR

MOV

MOV

+ f
, SET UP MY

+ EACH TIME

* ¥

AX, [8X]
CL,4 AX,CL
AX, [BX+2] BX, 4 BX ,ROMDS
ENTOO AX ,CL [Bx] ,AxX
[BX+2],DATASIZ
DS AS REQUIRED TO MY THIS ROM IS CALLED.

;save important registers

IN RAM

;setup segment to point

F to vector area

;Check for RAM in use starting

: with system area

;get segment address for ROM

,;Cconvert to absolute address

; ;add in length of segment

;point to next ROMS RAM seg pointer -Q: ais this the pointer for my ROM?

> N: , ¥: :
:

continue adding convert address store my segment
and the segment

up RAM usage to segment
address length

DATA AREA.

THIS CAN BE DONE

TECHNICAL REFERENCE

BOOT ROUTINE AND SAMPLE ASSEMBLY CODE A iAe =Bee

MOV DS,CS: (WORD PTR ROMDS+GCOOOH)

Sy

;additional init coed as requi

POP

BS

POP

sI

POP

DX

POP

BX

-

ORG

6000H+2048-2

DH

ROMCRC

ENDS

END

;retrieve the calling ROMS regs... -

a aP

+1

:

"aeg

20KMOF

3 aOMOR |

AG

VOCS:

;address
;

for

the ROM CRC) 4.
mate) || USP

ee
OaGHGS

ie) wir se Se

220

Atcpsiny RMUES

witoal

amepte

$C.BR MOS

1a ETE
Farts et
ree wet
Po een fae
fo gene
Ape

mF
wo
Qs
8o CHE oS ks
a
UOT Aad

:
"
f

is

na

ok

ai

{i =

ee ieee

ea 278

S04, ADOC 14

ae ee
HF St Xt

Awd
VOr Vous

é

gti:

7

ae

aes

(cee S| oy,

ree a4 Arnot s
VOT? wd p, BEE
RAN "2 Uns"
Tiacarc [o+xe |

Y JIE
Vee
IHE ae
OIA 5 Tis Baye Treee
¥ i |
VOr

Rides E

sei nA

S5 A ZA 254 ¥R &Y fi : SOR ATHT SMITE NDA

@-$/10

i eae | eo

TECHNICAL REFERENCE

SAMPLE INTERRUPT SERVICE ROUTINE

Appendix H

SAMPLE INTERRUPT SERVICE ROUTINE

An ISR example, with the appropriate routines to install and remove it,

follows.

The source of the common interrupt exit routine and the code

to count the number of outstanding interrupts (INTCTR) are also given.

Using this code is not mandatory, but is recommended to maintain future

compatibility.

uo)FESQHE,MREFARBEGNGE.,

SAMPLE INTERRUPT SERVICE ROUTINE

Exit logic

POP
es POP
POP
POP POP POP POP

ES
BP
SI
BI DX cx BX

; Restore environment

=

| CLs gssys

ape

°" W460" °° AL, 20H

,

MIOXUOTR BA1X8HV,AXA.L. 22

TMQ.

DS | ARS ws

; Disable interrupts
; Reset 8259 interrupt controller
; AX = 0000
; Point to vector area

pe

DEC "
AFORE

AoTps:(byteIT

p4tr

INTCTR)

| ; Decrement

interrupt

counter

"Hove lesistmsay i. MOV... SSCS STKSAV+2

; Restore original SS:SP

FOP. . Of .,., te

niet RET eon

tga titled

7 Restore original DS
;,*#* INTERRUPT RETURN *t

¥
INTSRV

Ps
ENDP --

TECHNICAL REFERENCE

SAMPLE

INTEaRRUPTPe

ot phe SoA teniaae SERVICE ROUTINE

Example 3

A

Interrupt service routine INStallation routine

aa

a a amet cere ae See ae ee -- Se eae se Rae

OT Ene

a
INTINS

PROC
PUSH
PUSH PUSH

NEAR
AX
BX Ds

ar at
,

cA
en

~

cats

-

es

MOV

CS:DATSEG,DS

=; Set up cs- Relative pointer, to

;° ~the local bs This is. a

é necessary bécduse the only

: reference the fpeoretet te

ae it is invoked is the ¢¢

;

Patch the interrupt vector to point to bite) Interrupt Service

;

Routine, saving the original vector. THIS illustrates `the

:

`brute force' method of APES and getting | Vectors. J fost

:

8088 Operating Systems (e.g. MS-DOS) have system calls 0

: accomplish this feat. ' Their use is preferable, because `some

;

Operating Systems attempt to arbitrate vector usage.

ia") pe?

m4 }

XOR

AX, AX

MOV

DS ,AX

CLI

; Clear AX ; DS <¢-- 9000 ; Protect the

vector

operation

i

Pick up original vector

.

MOV

AX,DS: (word ptr (INTNUM*4) )

MOV

BX,DS:(word ptr (INTNUM*4+2))

:

;

Save original vector in local save area

MOV MOV

CS: VECSAV,AX CS: VECSAV+2.,BX

:

Install vector to Interrupt Service Routine

INTINS

MOV MOV
STI
POP POP POP RET ENDP

DS:(word ptr (INTNUM*4)),offset INTSRV DS:(word ptr (INTNUM*4+2)),CS
; Interrupts OK again
DS
BX AX
- kkk RETURN «x

TECHNICAL REFERENCE

SAMPLE INTERRUPT SERVICE ROUTINE

I

NN

lalate tei Cotcardeet

;

Interrupt, Service Routine REMoval roptine

it a

a ec rte

joe eeeow

tr Ne Reef ane aS ae eee ee ee Le tt tS

INTREM PROC... NEAR 3° <©

ie

i F s Yam h atte Aci AX,

2

peneres *

oe

OE EE

ve NE axee pas 24s

XOR

Livy

MOV

DS , AX

CL lira ae 2 ;

; Clear AX ; DS s-~ 0000 ; Protect the

vector

operation

: Get original vector from local save, area .

a

tet. :

y

F

'

.

MOV...

4X38: VECSAV'-ei

'

by =

re

MOV.

BX ,CS: VECSAV+2

el

;

eae

* Ged

d

;

"J `4

t=

@i 4

:

Restore eoriginal-vector

eedeeee
7

,

MOV... BSu¢word `pir "(INTNeUtMy Ea4i)e) , AX

INTREM
INTSEG

MOV

DS: (word ptr (INTNUM*4+2)),BX

STI

; Interrupts OK again

POP

DS

POP

BX

POP

AX

RET

; *kk RETURN *«*%

ENDP
ENDS g1'1

dca. tt
Ch NE=S 7 ae

Tc. a
$5¢°

END

Cait.

. i

*

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fem wety gt

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FE aie

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et "Pye

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.

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i. ~

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Fr

beste?

|

H-6

TECHNICAL REFERENCE

SAMPLE INTERRUPT SERVICE RQUTINE

Se a

-- =
a

¥ die

This is the source for the coninfon interrupt exit: routine as aay? Bhaes

in ROM.

Any other common: exit routine installed here will erform,an

identical function. The user should use this exit «4%: the' eibetgates

interrupt service routine will be running concurrentWliyth a` &l-time

Operating

System

(for instance, during the ooom ears

any i the TI

communication packages).

Example 5

ae

oe

#

Common Interrupt Exit loge

an i

SiS

:

INPUT:

tos 3os-F>
ES:BX = SS:SP of the- interrupted `code

eee

fai

;

Interrupt stack contains saved ES,BX-AX: (£S'at top Saal

;

of stack)

CARUAC iheRol og eeSt

;

Stack of interrupted code contains saved DS

;

lle

le

ell

ee

ee

ROMDAT SEGMENT BYTE PUBLIC

ee

ee A

a = om RR

To eRe hs m w oe! Oy i
;

EXTRN

IXSSSV: WORD

; TEMpOF ALY, stack -pointer save.

EXTRN

IXSPSV: WORD

.

T RS Faker

ate

ROMDAT ENDS

a

.

- :

ert
ty RY

ae

217

wit ta

ROMCOD SEGMENT S8YTE PUBLIC

12

mites

ASSUME CS:ROMCOD, DS:ROMDAT

KA

tes

`
INTXIT

PROC

FAR

ap ke

et

Ae=

a z

cLI

MOV

AL,20H

ouUT

18H,AL

; Disable interrupts

oe

ee

; Reset 8259 interrupt controller~

s

ELBi:

DEC.

CS:(byte ptr INTCTR+OCOOOH) ; Decrement interrupt

;

counter (remember, this is in

;

ROM, 30 access to the vector

;

area is CS-relative)

MOV

DS ,CS:(word ptr DSADDR+OCOOO0H) ; Get ROM's DS

MOV

Ixsssv,Es

MOV

IXSPSV,BX

Save SS,SP of original code

POP

ES

POP

BX

; Restore commonly used registers ; from interrupt stack

POP

AX

MOV

SS ,IxXSSSV

MOV

SP ,IXSPSV

; Restore original SS,SP

POP

DS

; Restore DS from original stack

IRET

; **x*k INTERRUPT RETURN **%

INTXIT ENDP

,
ROMCOD

ENDS END

ri
H-7/e

_ Ci i

:
bt
oh a |

L

LaetHaLee

i
oe

TECHNICAL REFERENCE

INDEX

A

abort timer:

answer mode

.

.

:

originate mode.

:

-

address:

counter .

-

:

:

:

decode

:

:

:

:

:

latch

.

:

:

.

'

lines

:

:

multiplexer aecen :

:

MUX switch generation

register

:

:

,

valid bit

:

:

:

:

address, logical

addressing.

:

.

AIOWC .

5

:

:

ALB

:

:

:

:

:

:

ALE

;

;

:

:

;

Sienshumenice

CHim.

:

:

2

:

4

decode

Graphics.

:

:

alternate eharacter set

analog loopback

:

arbitration

:

.

assigning Bittesnate track

attribute:

bits.

:

:

;

A

hardware.

interaction latch

Logic

attributes.

bit

correlations

definitions

position

shift

blanking display

blink

:

blinking

block

:

:

-

:

buffer.

.

:

.

-

buffered-step

burst length

bytes, device control Tax byte:

command completion status

error status

:

A

Index~-1

3-30 3~42 3-29 2-306 2-44 2-S5 2-43 2-43 2-26 a23 7, 3-58 3-36
3-38 3-41

TECHNICAL REFERENCE TEE

I/O decoding .

`

:

:

I/Q ports .

.

.

.

.

I/O wait states

:

:

:

K

keyboard:

¢ mapping

`

queueing

'

x system .

.

`

:

.

.

.

:

-

L

iogical address, HIGH, MIDDLE,: LOW.

logic:.

expansion ORO control.

&

=

`memory refresh

_.

7

"

leng space received (71:55).°

loopback.

.

:

`

`

loss of carrier

:

:

.

ZOWs logical address

:

aoe

Me ot

mask, interrupt

7

:

=

memory adddressing.

:

memory control:

`lagic

4

5

A

:

state machine

A

:

`

state machine, expansion.

memory refresh logic ..

:

MPM :: 2

A

é

-

MIDDLE logical Paadhess?

miscellaneous error codes .

modem:

responses

;

:

:

;

software

:

:

5

A

time-outs

:

;

modified frequency Produlation

motherboard:

memory

i.

.

:

memory arate ne

:

:

MRDC- .

:

:

;

s

;

MREAD~.

2

multiplexer svitch®

,

i

:

multiplexers

.

`ae

,

MWRITE~

: :

:

Nee-f{

NMI-..

z

`

:

,

2

no: response

`

°

`

"

nonmaskable interrupt .

non-blinking

Index-6

INDEX
Kee.

Lets

car

i-35, "3-39

2-21

ist Ww
i
1e-YAWAiWD&NOWea oii o@N wa Wrw w& ! iS FY

TECHNICAL REFERENCE

os,

tit1 pha QoS Lae
INDEX

numeric. goprocessor
Ast

_]

a

a

*

Bt

5

ear Be 0 | erbeh ee

¥

4

NT eeNES

{Py Ss ee oe

odd sum

on~board EPROM/ROM.

operating system

output port

:

Osc clock .

:

*

7

+

t

*

t

*

*

t

il

*

a

*

*

+

J

¥. : 2-22

ot

ia Sa,

+h. 40

mvj. 25a

P

J

palette

:

.

palette number.

parallel printer port

Parity generation and

parity generation and

.

*

ouney "|

.

.

+

+

4

t

: a

checking.

checking,

me

a

wt *

re

.

~ce
: expansion

mf

ot

a

ot. Se Bz

eh wf FETs

r 3-28,723r31
s2+16,4 423

oS Le Boe! *

lg 3 "F ork

memory

* :

-`2=22

PCLK

*

a

phase-locked loop .

:

:

:

3

a aver 2-$8
wc ge 6H GS

pixel .

A

:

:

:

`

:

~-Lbv'ageye

Pixel addressin

:

:

:

Pixels.

:

:

:

:

:

:

plane .

.

:

:

,

:

:

?

poll for controller request

A

`

o

a

-

, 3-27

.

.

:

+, 2=42

.

Cd

:

: 3-27

wed.t) MSPS

Port:

Ma Belted ek eo

é

data output

:

:

:

=
a

ȴ 3+40

ra

input data reset

,

.

`

:

.

:

`

`

a

- . 3-40

aymi

;

3-40

precompensation

a

2

eet * £2-.30

print screen

:

:

`

=

KY 1@-57

processor -clock

:

:

;

:

2 452

Processor, data

:

:

a

:

". 2. Qhetho

program break .
program pause .

`

;

:
:

3

A oes ede

* @3

As ten = MSZ

a

; tE~ SH

er

ores

R

4° et ¢

RAM DIAGNOSTICS

4

:

:

: ae

RAM DIAGNOSTICS command

:

-

RAM, expansion.
raster graphics

-

.

a

:

:

°

A .

;

.

RDL&.

°

:

,

?

READ command

:

READ ECC AURST ERROR LENGTH command

READ LONG command .

READ SECTOR BUFFER command.

:

:

RECALIBRATE DRIVE command .

:

recovering data

,

refresh:

.

cycle

:

:

he

:

logic

.

;

,

:

logic,; expaasion memory .. .

timer refreshing.

:

:

:

:

:

:

;

:

:

:

J

*

*

*

a

1

-=

a

a

*

a

i aI -

|

SJ

eat

Eee e

oT ae J Beteo

os J

3 66

:

2 W226

1-4), 2-737

A

3x24

:

"5 SS-eSi6s.

4a3°e JETSg

5

+ 3-46

:

3-67:

4

=

a

2

(fe

.

.

Pasar 6

3-Qtir
ear2aii

Beye

|
Index-7

TECHNICAL REFERENCE

register assignments.

:

:

:

:

register, controller status

eS te

.

remote digital loopback

-

,

:

-

request controller error sense.

-

:

"REQUEST SENSE STATUS command

o hites

:

reset:

detection circuit

,

:

:

,

A

line.

.

:

:

:

-

4

:

:

Spoke 6

Semite: 2

:

;

:

;

.

fos DET bee

:

A

-

-

:

:

4

revers

:

:

.

:

:

:

;

reverse video na cursor

;

.

:

reverse-video .

:

:

.

:

:

:

RFSH: ,* % ;

;

ROHM *....

r

.

:

ae

:

:

:

"

ROM interface, system

s.°-

scan rate .

`

?

:

:

:

:

:

screen display.

:

;

-

:

:

screen/CPU arbitration.

:

:

:

scroFling .

:

44

;

:

;

sector buffer .

:

:

:

:

-

5

sector field description .

:

sectér:iinterleaving

.

4

4

:

SEEK. command .... ;

:

Arc tte AmeradaSod

send Winchester controller command.

`

se¢nsé, controller error

J

;

4

p

separator .. :

"pe

:

so He

; a

serral erat tations 2

:

:

serial/parallel data conversion

:

software:

commands.

,

,

,

:

i

:

:

"- timeouts.

:

:

:

:

:

:

.

spacé. received, long...

:

:

:

:

speaker

me

`

:

F

;

:

:

speaker cotauyees :

:

:

starting screen display

:

:

:

?

state machine °.

s

:

?

P

:

:

state machine, expansion memory control

sfatiec protection..

ect anaes

Pes

status lines _.

Ah :

.

:

:

:

status register

;

:

.

`

ney ice

switch generation, CAS and address MUX.

system ROM interface

:

:

:

:

7

system timers and speaker .

:

:

T

*

terminating resistor

.

`

:

terminal or software time-outs.

TEST DRIVE READY

:

;

:

:

:

:

TEST DRIVE READY command

;

.

;

.

Index-8

+

*

a!

a

+-

i

Sm

a

Ct

én"

TECHNICAL REFERENCE

- I yupat

testing, command

:

*

`

.

a

timer, abort.

:

:

:

3

timers.

"

:

:

,

:

:

time-outs, modem.

: : :

time-outs, terminal or software

+ J

i

2

ec 3-36:

:

Tha te = | on TR SER ZA

5; 21

42918, Ho9e-

"oe VLA

3224

gee se SUA A Se 8

U

underline

:

:

:

V

vertical:

blanking.

-

:

:

:

`

scan rate.

.

.

;

:

synchronizing signal.

:

va

video:

connector

A

:

,

`

memory

:

`

:

F

me Uys ta), wth eeeee! Occ ae

:

Beeb t a

2-42, 2-43.,..2*55

`

a

as Sef

te

`

bd

Cee

oy

SHES RLENApee Te

:

:

2-44, 2756 ©

:

-s

ar

-, 2-4@h°

AUR 4 2 ye 232744

:

;

: 27442

é

:

`

: 27-42

i

son 8

Aves

WAIT- .

;

:

:

:

:

Winchester controller:

- command

:

:

7

.

;

'' 5

ee

see

:

` tw... 2*98-

°

=A

aa

%

aie hay 2427.Q

Gata

.

:

7

:

pit

`

a eS OS eS -

disable data and status interrupt.

:

yaw, 5 4-75 5

enable data and status interrupt..

c@nable status interrupt

:

;

:

eo a hee th? FEO THER SORE. STEE YeRLEE O DR io, | oe Res

,get and compare data .

:

:

, te

Atv gl

get status

;

:

:

:

:

oe

A gt Ce

Se eEZ S|

- poll for request .

:

:

:

ee eee es tb A ee

write data

:

:

`

:

:

:

:

.

.

4 49739.

Winchester:.

|

Dy hate ee

>@isk system.

:

-

:

?

:

:

.

: F

2254371

drive format .

:

:

:

:

:

2 ois TTY AL 4572.%

error codes

:

:

2

:

:

:

-

i

: :

2 BPHE -

I/O ports

;

:

:

;

:

:

:

- Te ak heels Ege 3g :

ROM

«

*

4

"6

:

`

Lhe BRE #

a

4-21 =

wrap

.

.

4. `

:

`

:

`

:

`

oe OR

os 2243 =

WRITE Write WRITE Write WRITE
}

command .

:

:

:

data to the Winchester

LONG command.

5

-

preconpensation circuit

SECTOR BUFFER command

TM

`

A ed Ere ibee+, 0 ere

controller

ati ea, ie ye

"

-

=

:

-+ .f @2.

.. ;

:

:

ete Rete.

te

eee Qe are

boat bidet

, wh EEE ES

3-S6 -
4~ 73 : 3-62 423.0, , 3-65 -
= sy

dee:

See |

My eae

a

£

ay ~

`

4

A

Aieedte hg

if

Sete ar

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