Analog Computers

Reference / Paper · 1966

Hybrid Computer System Request for Proposal

Read the PDF (101 pp) ↗

A January 1966 Request for Proposal (RFQ) issued by Lockheed Missiles & Space Company (LMSC) for the procurement of a hybrid computer system. The document defines detailed technical requirements for the analog section, covering minimum component counts for five identical computing systems, including operational amplifiers, integrators, summers, potentiometers, multipliers, resolvers, and electronic switches. Intended to solicit competitive bids from computer manufacturers for a high-accuracy hybrid computing facility to support Lockheed's aerospace simulation work.

Manufacturer
Lockheed Missiles & Space Company
System
Hybrid Computer System
Year
1966
Type
Reference / Paper
Language
English
Pages
101
  • Hybrid Computer System
  • Lockheed Missiles & Space Company
  • hybrid computer
  • request for proposal
  • analog section
  • procurement specification

← Back to the Reference Library

Hybrid Computer System Request for Proposal

a HYBRID COMPUTER SYSTEM REQUEST FOR PROPOSAL JANUARY 1966 LOCKHEED MISSILES & SPACE COMPANY HYBRID COMPUTER ANALOG SECTION INSTRUCTIONS TO BIDDERS Bidders must respond to all numbered items. If Bidder wishes to take exception to any requirement, he may do so provided he includes a section of his proposal labled EXCEPTIONS and clearly indicates which item or items where he has taken an exception. ' Bidders are to provide price breakdowns for all two digit numbered items in Sections 1, 2, 3, and 4. ; . ’ Bidders are to provide their own guaranteed specifications whice are called for in Section 5, and must provide the information on the forms provided in Section 10. Other specification information will be considered only if the Method of Measurement is clearly defined. It is requested that if other specification information is included, _ that the formats in Section 10 be used where applicable. Bidders proposals must contain a clear description of all aspects of their,computer — systems and peripheral equipment. It is requested that where possible the descriptions follow the outline in Sections 1 through 4. Additional options will be considered if bidder clearly shows that there will be no reduction in computing capability and what advantage the option would provide to Lockheed Missiles and Space Company. Any computing element proposed must be available for demonstration and testing under system operating conditions at any time after receipt of proposals. STATEMENT OF REQUIREMENTS: Te intent of this procurement is to purchase five identical analog computer systems containing all solid state computing components of the highest static accuracy and best dynamic performance. 1.0 Minimum Complement of computing components for each of five analog computer systems: 1.1 Analog computer console and cabinets completely wired with all necessary # power supplies and operating controls. Lelel 1.1.2 1.1.3 1.1.4 1.1.5 1.1.6 1.1.7 1.1.8 1. 1.9 1.1.10 1.1.12 1.1.12 Console shall contain an overload indicator systen. Console shall contain an oscilloscope display system. Console shall contain a Rate fest feature. Console shall contain 4 temperature controlled capacitor oven. Console shall contain a shielded analog patch bay. | Console shall contain an Electronic Digital VoltMeter. Console shall contain a transistor VoltMeter. ; Console shall contain a reference voltage system. Voltage may be any level. The reference system will be capable of being slaved to any one of the four other consoles. Console shall contain a reference divider system capable of local and remote operation. Remote mode must be capable of accepting inputs from a digital computer or an automatic set up device. Console shall have a mode control system capable of local and remote operation. Remote mode must be capable of accepting inputs from any other analog computer, either one of two digital computers, or. an automatic set up device. Console shall contain an addressing system that can select any computing component. Addressing system must be capable of local and remote operation. Remote mode must be capable of accepting address from either one of two digital compute rs or an automatic set up device. | Console shall contain a power supply monitor system capable of reading all the power supplies in the analog computer system on the EDVM, TVM or oscilloscope. 1.2 60 Integrators 1.2.1 1.2.2 Each capable of summer, integrator or high gain operation. Each having the capability of at least six input resistors, 3 providing gains of one, and 3 providing gains of 10 when a normal feedback resistor is used. | 1.3 1.4 1.5 1.2.3 1.2.4 1.2.5 1.2.6 21.2.7 1.2.9 1.3.1 1.3.2 1.3.3 Each having the capability of a selection of an integration time constant of one second, one hundred milliseconds, ten milliseconds and one millisecond, when used with a standard gain of one input resistor. | One third or more of the integrators should have the capability of selecting an integration time constant of ten seconds when used with a standard gain of one input resistor. Each having the capability of electronic switching mode control for Initial Condition, Hold and Operate modes. Each having the capability of independent mode control for Initial Condition, Hold, and Operate modes. —_ Each having the capability of holding the input network's summing junction to zero volts in the Pot Set and Initial Condition modes. Each having the initial condition summing junction available on the patchboard. Each having the capability of having the initial rate from the input summing junction available for readout in the initial condition and static check modes. - 60 Summers Each capable of summer or high gain operation. Each having the capability of at least six input resistors, 3 providing gains of one, and 3 providing gains of 10 when a normal feedback resistor is used. Each having the capability of holding the input network's summing junction to zero volts in the Pot Set mode. 240 Potentiometers . 1.4.1 1.4.2 1.4.3 20 Potentiometers are to be three terminal manual set with a ground connection to be made by a bottle plug. All potentiometers except ‘the three terminal are to be servo set. All potentiometers except the three terminal are to be “phase shift compensated. 90 Electronic Multipliers L561 Approximate ly one half of the multipliers should be class 2, accepting +x and +y from low impedances source and providing a low impedance output. 1.6 1.7 1.8 Lg 1.5.2 Approximately one forth of the multipliers should be class 3, accepting +x and ty from a low impedance source and providing a low impedance output, or accepting +x and +y from a low impedance source and providing a current output. The patchboard configuration should be such that the programmer has the option for either mode of class 3 operation as well as providing for division and square ‘root modes. , 1.5.3 Approximately one forth of the multipliers will normally be associated with the Electronic Resolvers, but will be available as multipliers as & programmer option when resolvers are not used. 6 Electronic Resolvers 1.6.1 Each resolver shall be capable of polar to rectangular conversion of 2 two dimensional vectors. 1.6.2 Each resolver shall be capable of rectangular to polar conversion , of a two dimensional vector. 1.6.3 Each resolver shall be capable of continuous resolution in both the polar to rectangular and rectangular to polar modes. 24 Stored Program Dioded Function Generators 1.7.1 Each function generator shall be set by a pre-programmed device such as a card, special board, or digital computer. 1.7.2 Each function generator shall have at least ten segments plus a parallax adjustment. 1.7.3 Both the breakpoints and slope shall be adjustable. . 1.7.4 Each function generator should be class 1, accepting x from a low impedance source and providing f(x) as a low impedance output. 1.7.5 Pairs of function generators, by a programmer option, may be combined for twenty segment operation. 30 Feedback Limiters | 1.8.1 Each limiter must be adjustable over the entire reference voltage. range « . 1.8.2 Each limiter shall provide hard limiting for summers and integrators. 30 Comparators - 1.9.1 Each comparator will have its output and complemented output available in the logic area. . 30 Electronic Switches 1.10.1 Each switch shall be capable of being controlled by any logic signal in the logic area. Aah 2.0 1.11 1.13 1.14 1.15 1.16 1.17 1.18 1.19 1.20 1.10.2 Each switch shall be capable of switching voltages over the entire reference voltage range. 24 Relays 1.11.1 Each relay shall be double pole double throw. 1.11.2 Each relay shall be capable of being set by any logic signal in the logic area. 15 Function Switches 1.12.1 Each function switch shall be single -pole triple throw. 200 Analog Trunks 250 Logic Units 1.14.1 A logic unit is defined as 4 gate, flip flop, one shot, each stage of a shift register, each binary stage of a counter, etc. 1.14.2 Each logic unit will have both true and complemented outputs available. . . . 1.14.3 The logic may be either synchronous or asynchronous, put if the | latter, a clock must be available at the patchboard. 1.14.4 The logic board will have at least 100 trunk lines. 10 Analog Patchboards OO 1.15.1 Analog patchboards are to provide shielding for patch cords. 1,000 Analog Patching Elements : . 1.16.1 Analog patching elements are patch cords, bottle plugs and multiples. 1.16.2 All patching elements are to be shielded. 10 Logic Patchboards 500 Logic Patching Elements 1.16.1 Logic patching elements are patch cords, pottle plugs and multiples. 1 DC .to low frequency noise generator. 1 High frequency noise generator Peripheral Equipment: 2.1 2.2 2.3 _15 Eight Channel Strip Chart Recorders 2.1.1 Must be capable of slaving with the analog computer mode control. 2.1.2 Must be capable of operating the analog computer mode control. 15 X-Y¥ Plotters 2,2.1 Each must be capable of plotting over a 10 x 15 inch range. (2.2.2 Pen operation must be capable of being slaved to the analog computer mode control. 2 Automatic Set up and Checkout. Devices 2.3.1 Must be capable of setting all servo set pots. 2.3.2 Must be capable of reading all computing components. 3.0 2.5 1 Logic Patchboard Storage System 2.3.3 Must be capable of activating the computer mode control. 2.3.4 Read and store all potsetting in 4 suitable form for reprogramming the computer. 2.4 1 Analog Patchboard Storage System | 2.4.1 Must be capable of holding all of the , analog patchboards ina fully wired condition. . 2.5.1 Must be capable of holding all of the logic patchboards in a fully wired condition. Can be incorporated with Item 2.4. 2.6 1 Patch Cord Storage System 2.6.1 Must be capable of holding all of the patch cords, both analog and logic. 2.6.2 Shall be arranged in such a manner to facilitate patching either analog or logic patchboards. Spares and Test Equipment: 3.1 1 Test Rack 3.1.1 Capable of testing and calibrating all computing elements to. original specifications, operating in the same system environment as the computer system. . 3.1.2 Capable of testing and calibrating all logic elements to original | specifications, operating in the same system environment as the logic system. 3.1.3 Test rack may use spare computing components to implement the. above tests. 1 Reference Divider System LS) PO 3.2.1 System must provide two voltages simultaneously, one to be used as an input, the other to be used as a nulling voltage. 3.2.2 System must. be capable of dividing reference by .001% steps. 3.2.3 System must have preprogramming capability for selecting standard. test and calibration voltages. . 3.2.4 System must be portable. 3.3. 1 Lot Spare Computing Elements 3.3.1 Shall include EDVM, power supplies, reference, amplifier networks , *. and approximately one or two percent of the plug in spare components, but at least two of each type of computing element or card. 3.4 1 Lot Spare Parts _ 3.4.1 Shall include at least two each of each type of resistor, capacitor, - diode, transistor and relay that are used in the computer system. 4.0 Options: 5.0 Kel 4.2 4,3 Ay LS Delete one computer console as described in Item 1. Delete 3 eight channel recorders, 3 X-¥ plotters 4s described in Items 2.1 and 2.2 Delete 1 automatic set up and checkout device as described in Item 2.3. Substitute a parallel entry keyboard for both the addressing and reference divider systems. ; , Substitute electronic digital attenuators for all of the servo set potentiometers. Required Specifications: 5el 5.2 23 Drift 5.1.1 Arbitrary Electronic Function Generator 5.1.2 Electronic Multiplier 5.1.3 Electronic Sinusoid Generator 5.1.4 Integrator Amplifier 5.1.5 Summing Amplifier 5.1.6 SCI Method of Measurement 5.1.7 Format for results 10.1. ; Error, Total 5.2.1 Electronic Multiplier 5.2.1.1 SCI Method of Measurement 5.2.1.2 Format for results 10.2.1 5.2.2 Combination Amplifier 5.2. e. 1 SCI Method of Measurement for Summing Amplifier with the ~ combination amplifier in the summing mode. 5.2.2.2 Format for results 10.2.2 — 5.2.3 Summing Amplifier 5.2.3.1 SCI Method of Measurement 5.2.3.2 Format for results 10.2.2 Frequency Response, Amplitude 5.3.1 Combination Amplifier 5 3. i. 1 SCI Method of Measurement for amplifier with the combination amplifier in the summing mode. 5.3.2 Summing Amplifier 5.3.2.1 SCI Method of Measurement for amplifier. 5.3.3 Arbitrary Electronic Function Generator 5.3.3.1 SCI Method of Measurement 5.4 22 5.6 a7 5.3.4 Electronic Multiplier 5.3.4.1 SCI Method of Measurement 5.3.5 Electronic Sinusoid Generator 5.3.5.1 SCI Method of Measurement 5.3.6 Format for results 10.3. Frequency Response, Phase , 5.4.1 Combination Amplifier 5.4.1.1 SCI Method of Measurement for amplifier with the combination amplifier in the summer mode. 5.4.2 Summing Amplifier 5.4.2.1 SCI Method of Measurement for amplifier 5.4.3 Arbitrary Electronic Function Generator 5.4.3.1 SCI Method of Measurement 5.4.4 Electronic Multipliers 5.4.4.1 SCI Method of Measurement 5.4.5 Electronic Sinusoid Generator 5.4.5.1 SCI Method of Measurement 5.4.6 Format for results 10.4. Noise 5.5.1 Arbitrary Electronic Function Generator 5.5.2 Electronic Multiplier 5.5.3 Electronic Sinusoid Generator 5.5.4 Summing Amplifier 5.5.5 SCI Method of Measurement - 5.5.6 Format for results 10.5. Recovery Time, Overload 5.6.1 Arbitrary Electronic Function Generator 5.6.2 Electronic Multiplier 5.6.3 Electronic Sinusoid Generator 5.6.4 Summing Amplifier 5.6.5 SCI Method of Measurement 5.6.6 Format for results 10.6. Response, Transient 5.7-1 Arbitrary Electronic Function Generator 5.7.2 Electronic Multiplier 5.7.3 Electronic Sinusoid Generator 5.7.4 Summing Amplifier. © 6.0 7-0 5% a9 5.10 5.11 5-7-5 SCI Method of Measurement 5.7.6 Format for results 10.7. Response, Transient, Under Capacitive loading 5.4.1 Summing Amplifier 5.6.2 SCI Method of Measurement 5.8.3 Format for results 10.8. - Crosstalk, Patchboard Amplifiers 5.9.1 Method of Measurement 9.1 5.9.2 Format for results 10.9. Output Impedance 5.10.1 Combination Amplifiers 5.10.2 Summing Amplifier . 5.10.3 Method of Measurement 9.2 5.10.4 Format for results 10.10. Velocity Limit 5.11.1 Combination Amplifier 5.11.2 Summing Amplifier 5.11.3 Method of Measurement 9.3 5.11.4 Format for results 10.11 Computer System's Environmental Requirements: 6.1 6.2 6.3 6.4 6.5 6.6 6.7 Bidders shall submit dimensioned drawings showing the physical size of all consoles, cabinets and peripheral devices. Drawing will indicate the location of airconditioning intakes and exhausts, power cords, and other external cable requirements. . Bidders shall submit a suggested arrangement of a computer system including the arrangement of the peripheral equipment. . Bidders will indicate the clearances required for maintenance access to the computer system and the peripheral equipment. Bidders shall submit floor loading data for the computer system. Bidders shall submit electrical power requirements for computer’ system and peripheral equipment. Bidders shall submit airconditioning requirements for the computer system and peripheral equipment. Data will include the volume and temperature of the intake air and the temperature of the exhaust air. Bidders shall submit any additional facility requirements for the installation or operation of the computer systems and peripheral equipment. | , Successful bidder shall provide five (5) copies of maintenance procedures and maintenance manuals for all computing components and peripheral equipment. 8.0 Inspection and Delivery 9.0. &1 6.2 &.3 &.4 8.5 8.6 Successful bidder shall notify Lockheed Missiles and Space Company at least two weeks in advance of a date for inspection of the computer systems at the bidder's plant. . ; Successful bidder shall provide space and test equipment for representatives of Lockheed Missiles and Space Company to inspect and test the computer system prior to shipment. Shipment of the computer systems can be made gnly after successfully meeting specifications. Meeting of specifications is to be determined by Lockheed Missiles and Space Company. . Shipment is to be F.0.B. Lockheed Missiles. and Space Company, Sunnyvale, California. . Bidder shall submit a delivery date based on receipt of purchase order. Bidder shall provide a plan to compensate IMSC in the event bidder is unable to meet his delivery date. . Method of Measurement: 9.1 Cross Talk, Amplifier The following circuit is recommended for measurement of amplifier cross talk. Worse case results for any combination of amplifiers on the patch- board should be given as the crosstalk specifications. KR sin wt q ®o1 O 1 SIP S\ S02 a Std Std _ load load — —c To Q Cross talk ratio = “92 KR Suggested values of K is 1.0 R = Reference voltage. A-10 9.2 9+3 Output Impedance The following circuit is recommended for measurement of amplifier output impedance. 3 KR sin wt jj y foL ota Load sq S02 ota Load ~O O —L y x e R Output Impedance = _02 Max 1 KR - “02 Max Where R,, is the value of the standard output load in ohms. Suggested value of K is 1.0. Velocity Limit Velocity limit can be measured by the circuit shown below: S e Square iw 0 ve ; Generator od a Sta Std Load Load -O O rc cc = a Recommended value of K is 1.0. The frequency of the square wave generator and the time scale of the oscilloscope should be adjusted to give the best : t resolution of the output slope. Velocity limit = 2M t -t -Jeo .leo Where t . is the time required for e_ to reach .Y KR and t. is the Yeo fo) «leo time required for e5 to reach .1 KR. SCI square wave generator may be used. 10.0 Format 10.1 10.2 10.3 10.4 for Specifications Drift 10.1.1 Arbitrary Electronic Function Generator Microvolts/hour % R/hour . . ‘ 10.1.2 Electronic Multiplier Microvolts/hour $R/hour - 10.1.3 EHlectronic Sinusoid Generator Microvolts/hour — $R/hour 10.1.4 Integrator Amplifier 10.1.4.1 Hold Mode Microvolts/second = %R/second 10.1.4.2 Operate Mode Microvolts/second %R/second 10.1.5 Summing Amplifier Microvolts/hour %R/hour See Graphs See Graphs See Graphs ERROR IN PERCENT OF R B | po a FREDERICK POST COMPANY 311TR370 SEMI-LOGARITHMIC 3 34" CYCLES ol a N OO = N W KR iS)] ERROR, TOTAL EIECTRONIC MULTIPLIER ® N @O = N lO.2.1 wo & ul nb) ee a aw o) Ao oN (@) FREQUENCY IN CYCIES/ SECOND loO 1000 FREDERICK POST COMPANY ERROR IN PERCENT OF R St1TR370 SEMIL-LOGARITHMIC 3 344" CYCLES : ERROR TOTAL AMPLIFIER lO.2.2 > a a oo nN © 0 NS w A wo © N @ © -— nN O - 8 “uo 1 @ 0d t mo) 7 a fA ott xe) i | f i 4 1, \O FREQUENCY IN CYCIES/SECOND 100 lO00 AMPLITUDE RATIO a FREDERICK POST COMPANY 311TR370 OI SEMI-LOG ARI THMIC ® N @ 0 3 3%" cycles FREQUENCY RESPONSE, AMPLITUDE N w h a OO N ® © - Ch la) fan - © a “4 lan le] lO FREQUENCY IN CYCIES/SECOND loo tO00. AMPLITUDE RATIO be. a h FREDERICK POST COMPANY 3TITRI7O oi SEMI-L.OG ARI THMIC Oo NI OO 3 3%" cycles FREQUENCY RESPONSE, AMPLITUDE NS ® a ou Oo N Oo lO.3 “ooo N @ oO Cd ips Ka W (es) an fam\ ram) W fam lo lOO me newer eee tee nmr ban nee x FREDERICK POST COMPANY S18TRI70 gi SEMI-LOG ARI THMIC Oo N © O a 34" cyYcLes N b FREQUENCY RESPONSE, PHASE - a © N@ oO = N 104 a —_ oO Nv © oO cy = fam Nj on Cc Se CD. he MNO a PHASE ANGIE IN DEGREES lam\ eo D FREDERICK POST COMPANY 311TR370 SEMI-LOGARITHMIC 3 3%" CYCLES FREQUENCY RESPONSE, PHASE lo4. @ b Oo OO SS OO = i) Ww ‘S “uo Oo NO wo = 1) uo oo nN @ 00 | t Fe if t r # REQUENC CLES OO DOO ii Veep qe »y Va NK WY PHASE ANGIE IN DEGREES Cc eed LY | FREDERICK POST COMPANY CROSSTALK RATIO IN PERCENT OF R S1ITR370 «SEMI-LOGARITHMIC 3 3%" CYCLES CROSSTALK lO 9 es . “NN? A 4 oO VN oo N w A ou ® NO © = w Ro m2 1 0d AU | ! OG iE wT a), Fay = RUE rane Al e re ranwry late! pW CL fax 3 i a L 1OO FREQUENCY IN CYCIES/SECOND lO0O 10000 FREDERICK POST COMPANY StITR370. SEM-LOGARITHMIC 3 34" CYCLES OUTPUT IMPEDANCE lO : | O w S () a aM © N © 0 = N ® ES “uo Of NOOO N 01 ® 1 900 ] NG fap ss, at OUTPUT IMPEDANCE IN OHMS N4 VN Ia i | IOO FREQUENCY IN CYCLES/SECOND 1\000 10,000 10.5 10.6 10.7 10.8 10.9 - 10.10 10.12 Noise Photo-oscillograms with y-axis calibrations in peak to peak millivolts and as a percentage of R. SCI filter cut off frequencies. Recovery Time, Overload Photo-oscillograms with x-axis calibrations in time. Response, Transient Photo-oscillograms for K equal ‘to 0.1 and 0.8. Response, Transient, under Capacitive loading. Photo-oscillograms. See Graphs. See Graphs. Velocity Limit . Photo-oscillograms with the x-axis calibrated in time and the y-axis) calibrated in percent of Re In addition, photo-oscillograms should be marked with the velocity limit value. LOCKHEED MISSILES AND SPACE COMPANY HYBRID COMPUTER INTERFACE SECTION INDEX 1.0 Title 2.0 Purpose 3.0 General Description 4.0 Interface Philosophy . 4,1 General . 4.2 Pure Digital Mode 4.3 Pure Analog Mode 4.4 Hybrid Mode 4.5 Control 5.0 Data Transmission 5.1 General 5.2 ADC Requirements 5.3 ADC System Specifications 5.4 DAC Requirements 5.5 DAC System Specifications 5.6 Isolation 5.7 Checkout Panel 5.8 Operational Configuration 6.0 General Purpose Logic - 6.1 Logic Complement 6.2 Patchboard Terminations 6.3 Logic Compatibility 6.4 Synchronous Logic 7.0 Discrete Trunks 7.1 General » 7-2 Analog-Interface Trunks 7.3 Interface-Interface Trunks 8.0 Free Priority Interrupts 8.1 General 8.2 Description 9.0 Free Discretes 9.1 General 9.2 Parallel and Individual Control 9.3 One Shots N [-i 10.0 Functional Control 10.1 General 10.2 Digital Access Selection 10.3 Addressing An Analog Computer 10.4% Busy Status and End of Operation Interrupt 10.5 Address Selection 10.6 DVM Readout 10.7 Setting Pots 10.8 Mode Control 11.0 Cabling Oo 11.1 General 11.2 ADC Channels 11.3 DAC Channels ‘11.4 Discrete Trunks 12.0 Installation Requirements 13.0 Documentation Requirements 14.0 | Software Requirements T-ii 1.0 2.0 3.0 » 4.0 Title: Lockheed Missiles and Space Company, Hybrid Computer Interface Section Purpose: ‘ The purpose of this request for proposal (RFP) is to set forth the functional description of an interface system to connect the digital and analog computers defined in the following two RFP's: @ Lockheed Missiles and Space Company Ryorid Computer, ‘Digital Section e Lockheed Missiles and Space Company Hybrid Computer, Analog Section General Description: The proposed interface equipment (Figure 1) shall be installed at IMSC, Sunnyvale, California in Building 1$1 as a linkage system petween analog and digital computers which will be delivered during 1966. The digital section of the hybrid computing system is described in the RFP entitled IMSC Hybrid Computer, Digital Section. The analog section of the > computing system is described in the RFP entitled IMSC Hybrid Computer, Analog Section. The digital section will consist of two medium sized digital computers or their equivalent. The analog section will consist of five analog compute rs (with general purpose logic units) and two small digital set-up computers. The proposed linkage equipment will be composed of two identical interface systems denoted in Figure 1 as 'A' and 'B'. Both interface systems will be distinct and independent of each other and capable of simultaneously operating as part of separate hybrid computer simulations. | ‘The proposed linkage system will be flexible in that analog to digital channels and digital to analog channels and general purpose logic not used in one inter- face subsystem can be used in the other. Each of the two interface systems will have capability for both high accuracy high speed data transmission, and effective - control and monitoring of an independent hybrid simulation. Interface Philosophy: 4.1 General The following operational philosophies shall dictate the overall design and construction of the Hybrid Computer interface described in this request. 4.2 Pure, Digital Mode - The hybrid interface system shall not interfer nor restrict either of the digital computers from operating in its normal digital mode, independent of the interface and all other computers. TO SET-UP COMPUTER ¢ SET POT fe (CHK) : “. ADORESS . : SELECTOR - NGITAL ove {CHK RO) . Loic access : Locic. Lp PATCH | ANALOG SELECTOR £ READOUT : TRUNKS BOARD | COMPUTER (MANUAL) S MODE - $ ' CON TROL 64 = INTERFACE ANALOGS MODE DY 7 22°P a Losic SAD Ll» PATCH SLAVE rr - PREE REAG PATCHBOARD BOARD SELECTOR |” OISCRETES «4 > . at 189 16 D-8 (manuaL) , t: TRUNKS ~<: : FREE WRITE | “ 7 24_ : . 3: . OISCRETES 3 23a te < PRIORITY : 4 } ry) ; a re : InTEauPT . ; e ce) ac s ¢ ag aL + TRUNKS 2 1 a —€-—| Contr ° - ) 2 16 16 AD ape “TM : Js ] J s/4 18 aD s - J ys 16 #9 $16 pA ty AY 1 7} * ad mux conTROU ; 5 | CONV. 64H. 32 320A | LP a O-a . 0. = ac s ¢ Conv. TRUNKS 3 ‘ - me = . ° © w 8 TRUNKS wl 883 3 +) | = : are u zer ge , 3 s z Qn ann : oy an, s L. oan ao 4a 32 D-A s2 0-0 | ] md MUX + CONV, - ~ | conv. - 64 CH. CONTROL : D £. ] J : LPs a XY : 184-0 | 60 .ac 8 ¢ } TRUNKS, 4 € < 16 16 aD . H J 5) ba apa ry CONTROL 16 AD : . | ° 16 0-4 PRIORITY = » IMTERUPT ¥ , . > | 24 3 FREE WRITE ” 5 & DISCRETES i Les aA re 64 pa eT) 60 ac 8 Fa 4 FREE READ TRUNKS | TRUNKS 8 4 - OISCRETES . INTERFACE : : > Loaic MODE PATCHBOARO aps or) : » conTRot [: a , 16 a-D > $s ~ s over BOA READOUT Locic ADORESS . 2 SELECTOR {CHK RO) SETPOT (CHK) 7 FIGURE j “LMSC HYBRID COMPUTER INTERFACE - FUNCTIONAL BLOCK DIAGRAM L.3 4 4.5 Pure Analog Mode The hybrid interface system shall not interfer nor restrict any combination of the analog computers from operating in their normal analog mode, » independent of the interface and all other computers. Hybrid Mode The hybrid interface system shall be composed of two identical, distinct, and independent interface systems, 'A' and 'B', These interface systems shall be constructed such that the following modes of operation can be performed. ; . 4.4.1 . Each of the two interface systems shall be designed and constructed such that unused analog-to-digital and digital-to-analog conve rsion channels (ADC, PAC) and unused general purpose logic in one interface system can be used by the other interface system (See: 5.2.2 and 5.4.11). 4.4.2 Component failure (e.g., power supply, disconnected cable, etc.) in one interface system shall not interfer nor restrict the standard operation of the other interface system. (The word ‘standard’ refers to an interface system that does not utilize unused equipment in the other interface system). 4.4.3 “Two hybrid computing systems can be mechanized and operated - simultaneously and completely independent of one another. 4.4.4 One group of analog computers, one interface system, and one | digital computer can be delivered to IMSC where they will be checked out, and operated both independently and as a hybrid computing unit. The remaining computing equipment can be assembled and checked out at another location (e.g. vendor's factory). The interface vendor shall state the change in cost and physical size of the complete interface system if this operational philosophy Chu. k) is recinded. Control The area of control involves all those functions of the linkage equipment which involve the controllability of the interface system from the digital computer, analog computer, and from the interface logic patch panel. This request indicates what functions must be controlled, but the implementation of these controls is a direct function of the particular analog and digital computers and is left up to the system designer. It will be the responsibility of the vendor to furnish a satisfactory operating system. | i This document should be used only to determine the functional capabilities and not be used as a specification for equipment design. The responsibility for linking the equipment to the analog computer and to the digital computer | is the responsibility of the vendor. .In evaluating the proposed system, Lockheed will be interested in the command structure utilized by the - digital computer in controlling the interface. The execution times of these commands will be evaluated and must be contained in the proposal. Every effort should be made by the vendor to implement the functional capability of the equipment with off the shelf design and equipment. 5.0 Data Transmission System: 5.1 General 5.1.1 The transmission and processing of continuous data signals between the analog and digital computers shall be accomplished in each of the two interface systems by the analog-to-digital and the digital to-analog systems. Analog computer signals shall be digitized and sent to the digital computer via the Analog-to-Digital | Conversion (ADC) system (Figure 2). Digital-to-analog signals shall be processed and transmitted to the analog computer via . the Digital-to-Analog Conversion (DAC) system (Figure 3). 5.1.2 Control of the ADC sample and hold amplifiers and the DAC output registers shall be governed py the digital computers. However, the system shall be designed such that the two interfaces will have the capability to override and synchronize control by appropriate patching of general purpose logic on the interface ; patchboards. 5.1.3 A switching arrangement shall be incorporated within the hybrid DAC interface system to provide switching control of unused DAC and/or ADC channels in one interface system to the other interface system. | : 5.1.4 The discussion and description of the ADC and DAC systems that follow, place a lower limit, not an upper limit, on the characteristics and capabilities of the data transmission system's components. The primary concern of this request is to obtain two independent and flexible sets of ADC and DAC systems that can reliably transmit data between the analog and digital computers at ‘a maximum THROUGH-PUT rate, with a maximum THROUGH-PUT accuracy and resolution, and with a minimum amount of noise and distortion. I-3 ro - preitan = CI “60m ra : INTERFACE to OIGITAL < come ‘e INTERFACE ‘a ¢ SET POT « - a3) | ADDRESS SELECTOR ‘ OIGITAL CHK, Ri pyM {rcaxnay | : Loaic access Locic 60 PaTCH/anatoc [| fse.ector ¢ READOUT TRUNKS BOARD | COUPUTER (MANUAL) S MODE t te CONTROL, 3 a4 = : INTERFACE ANALOG MODE - : Locic LaliAicQecmmtep- PATCH SLAVE PREE READ PATCHBOARD i moarD SELECTOR DISCRETES as 150 16 D-A dmanuaL) TRUNKS FREE WRITE | DISCRETES za fy - 5 PRIORITY § Lee a . tNTERUPT ol 60 ac Lis ¢ = TRUNKS 2 ‘ s 5 CONTRO 16 16. B-Dioond APB M s/t 16 A:D. 3s ° = mifual: Daa 16 D-A wv] 7 hI L y Ao wux cONTROY ; 5 CONV. 64 Ch. 32 3204 Lee Aa D-aA 30 le ac s r. . CONY. TRUNKS 3 ) =z pe o J ee\* = soe z2 siz are : sar Sr 3 s zO%M tan $35 325 4s € ; 32 5 O-A ao mux CONY, Cony, 64 CH. 3 4 CONTROL, 0) a ! J J Les a t 164-0 # 60 ac ___}$ Z 7} TRUNKS -4 ] 16 16 A-D S/H , 5] apa u 3 CONTR j ONTROU 3 PRIORITY | 4 INTERUPT | 7 ¥ i FREE WRITE D OISCRETES ups A L_s4 . ac s ¢ PREE READ 5 ) DISCRETES INTERFACE x Logic moe | PATCHBOARO ape - u CONTROL = ‘ 8 | __|s ovM READOUT Loaic AODRESS SELECTOR . (CHK RO} SETPOT (CHK) : - -. FIGURE 2 | “ANALOG TO DIGITAL CONVERSION SYSTEM TO SET-UP CONPUTER To OIGital Cour — INTERFACE 'A' ° INTERFACE ‘Bs’ SEX POT , . tcHK) - + ADDRESS SELECTOR ‘ o . | (CHK, RO) 4 DISITAL ove of Locic ACCESS é Loaic PATCH ANatos § | IseLector £ READOUT 3 TRUNKS BOARD | COHPUTER (MANUAL) 5 - wOoe : $ ' —. = CONTROL oa o4 = INTERFACE ANALOGS MOOE 1 Logic PATCH - | stave FREE READ : PATCHBOARD BOARD . SELECTOR OISCRETES a4 . a Lo : (MANUAL) FREE WRITE | | . DISCRETES ° rT , a o PRIORITY q 4 ry) a INTERUPT * A | e 69 ac s ¢ 2 > TRUNKS 2 S . .< CONTROY : L 2 16 16 AD ara C} J N ] s/w {1S AD. s L__ts Q Je &D ff 16 0-4 2. 4 . : NY. Li . Av) mux conTrRoU ee fONV. 64 Ch. 32 3204 LPs {4 D-A ° 30 ac $s ¢ . CONV. TRUNKS 3 . Lad ode o w = w gez zz + | z ara “ Rar or 3 3 zon daw oar tar $s Lc edu aan a < 32 o-A fs) mux 7 CON, , oS ;GONV. 64 cH. - onTro 7 i ie. ups ry : A. a 18 A-0 8 60 ac s L 4 TRUNKS 4 16 a = a 16 AD S/H 7 ~ 5) apa “ ; € ] CONTROL ; ai PRIORITY a | 2 INTERUPT | q ? . ad FREE WRITE ° DISCRETES ure a L_84 60 > ac s _¢ FREE READ ~ TRUNKS TRUNKS ) 5 OISCRETES INTERFACE ! . Logic : MODE 3 PATCHBOARD 3 apa ut : CONTROL p : s s = ove READOUT Losic ADDRESS ~ SELECTOR {CHK ,RO} SETPOT (CHK) TO SET-UP COMPUTER f FIGURE 3 DIGITAL TO ANALOG CONVERSION SYSTEM 5.2 ADC Requirements: 5.2.1 General Each of the two ADC systems (Figure 2) shall include cabinets, chassis, and associated power supplies wired and with all the necessary cabling to the digital and analog computers and: -- 5.2.2 The hybrid interface shall contain a total of 64 ADC channels -- 32 with sample and hold amplifiers, 32 without sample and hold amplifiers. The vendor is requested to supply a unit or modular “-~" price with his proposal for ease of modification.‘ons. 5.2.3 . The ADC channels will be conre cted to the analog computers ' patchboards as shown in Figure 2. Each of the four analog computers (Numbers 1,2,4,5) will be connected to 16 different ADC channels; 8 channels containing sample and hold amplifiers, & channels with~ out sample and hold amplifiers. : 5.2.4 All ADC channels shall accept analog voltages from the analog patchboards that will range from plus to minus 100 volts. ‘The vendor shall discuss a method by which his proposed ADC system can detect analog input voltages that exceed 100 volts. 5.2.5 All ADC channels will be constructed such as not to degrade the analog computers’ operation by excessive loading. - 5.2.6 The two ADC systems shall be independent such that a malfunction or power shutdown in one interface system will not affect the standard (See: 4.4.2) operation of the other. 902.7 Interface 'A' shall contain the 32 ADC channels connected to ‘analog computers numbered 1 and 2. Interface 'B' shall contain the remaining 32 ADC channels connected to analog computers _ mumbered 4 and 5. , 5.2.8 Each interface system shall be able to random and sequentially monitor all ADC channels independently of one another. The vendor should describe the operational modes of his proposed ADC system : din detail. a 5.2.9 It is desirable that each of the two interfaces contain a multiplexer and address system such that the 64 ADC channels can be expanded up to 96 channels after delivery of the hybrid interface system. The vendor is requested to describe the expansion capability of his proposed ADC systems. He will include two supplementary 5.2.10 prices in his quotation: The price per additional ADC channel with a sample and hold amplifier; the price per additional ADC channel without a sample and hold amplifier. The ADC resolution shall be 14 bits (13 bits plus sign) or more. If the vendor has the capability of furnishing an ADC system(s) with a resolution exceeding 14 bits, he should document, price and include that system(s) as an option to the 14 bit ADC system. - If the vendor has a preference for one ADC system over another (e.g. resolution), he should state his preference within his proposal and discuss his reasons. - §.2.11 The control of the 16 sample and hold amplifiers in each of the two ADC interface systems shall be connected to their corresponding Interface Logic Patchboards (Figure 2) in such a way as to allow signals from the logic patchboards to override and synchronize sample and hold commands originating in the digital computers. The vendor is expected to include a complete description of his proposed sample and hold control system in his proposal. Desirable features of this system would be: If no patching is made to a sample and hold control hole on the logic patchboard, then the sample and hold amplifier represented by that patchboard hole would respond directly to sample and hold commands emanating from the digital computer. A 'disable' signal patched into the hole would delay execution of the digital computers' command until the signal from the logic patchboard changed to ‘enable’. 5.2.12 An ADC sample and hold selection switch (manual) shall be included | within the hybrid interface system by which an operator could distribute the control of the sample and hold amplifiers between the two digital computers. “fhe switch should functionally operate as follows: If an operator manually positions the switch between numbers n and ntl; Sample and hold amplifiers numbered up to and including n would be under control of digital computer 'A', (digital computer 'B' could monitor the output of the sample and hold. amplifiers, but it could not control the amplifiers); sample and hold amplifiers numbered n+1 and greater would be assigned to digital computer 'B' (digital computer 'A' could monitor the output I-5 of the sample and hold amplifiers, but it could not control the amplifiers). Standard ADC system operation would be achieved when the switch was positioned between numbers 16 and 17 | (See: 4.4.2) 5.3 ADC System Specifications 5361 5.3.2 5.3.3: General The manufacturer shall include the following specifications in his description of his proposed ADC system. In these specifications ADC THROUGH-PUT and S/H shall be defined as: & ADC THROUGH-PUT; From the analog computer's patchboard to the digital computer's memory. « S/H: Semple and Hold or Track and Store amplifier. ADC THROUGH-PUT rate 1: This rate shall specify the speed at which 16 ADC channels with sample and hold | amplifiers (S/H) can be sequentially addressed and their voltages digitized and transferred to one of the digital computer's memory storage. The ADC THROUGH-PUT rate shall be commensurate with the THROUGH-PUT accuracy 1. The rate shall be derived under the following conditions: | o $/H amplifiers have previously been placed in their. hold - (store) mode ; e S/H amplifiers are connected to the first through the sixteenth multiplexer channels; -@ The multiplexer shall start with its first channel and advance , sequentially to its sixteenth channel; e S/H amplifiers connected to even numbered multiplexer channels. will represent maximum analog output voltages of the opposite . polarity as those connected to odd numbered multiplexer channels. (e.g. Chan 1, +100V; Chan 2, -100V; Chan 3, +100V3 +003 , Chan 16 -100V). ADC THROUGH-PUT rate 2: This rate shall specify the speed at which the information on the 17th through the 32nd multiplexer channels (without S/H amplifiers) can be sequentially addressed, digitized and placed in, the digital computer's memory storage. The ADC THROUGH-PUT rate shall be commensurate with the THROUGH-PUT accuracy 2. The rate shall be derived under the following conditions: 5.3.4 5.3.5 5.3.6 5 +367 @ The sixteen analog input channels without S/H amplifiers shall be connected to the 17th through the 32nd multiplexer channels; ® The voltages from the analog patchboard on the sixteen direct lines of the multiplexer shall alternate between plus and minus peak analog output voltages (e.g. Chan 17, +100V; Chan 18, -100V; Chan 19, +100V; ...3; Chan 32, -JOOV). ADC THROUGH-PUT accuracy 1: This value shall specify the accuracy with which the ADC system can transpose an analog voltage on the analog computer's patchboard (via a S/H amplifier, multiplexer and ADC) into a digitized number and store it within the digital computer's memory. ADC THROUGH-PUT accuracy shall include errors from all contributing sources (e.g. S/H amplifier; ADC resolution; component off-set, gain, linearity; allowable settling times), and shall be that error which is associated with the ADC THROUGH-PUT rate 1. The value shall be specified as a percent of the peak analog output voltage (e.g. 10.03% of 100 volts). ADC THROUGH-PUT accuracy 2: Wit