Analog Computers

Manual / Guide · 1962

Instruction Manual for Analogue Computer SCD 10

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Instruction and maintenance manual for the Solartron SCD 10 Analogue Computer, a general-purpose medium-capacity machine intended as a design tool or educational aid. Covers technical description of control panel, patch panels, and reference power supplies; installation and test procedures; and breakdown instructions with component lists. The SCD 10 features differential equation solving, servo multipliers, resolver connections, and a repetitive timer suited to problems such as servomechanism analysis and automatic control.

Manufacturer
Solartron
System
Solartron SCD 10
Year
1962
Type
Manual / Guide
Language
English
Learning track
machine reference
Pages
24
  • Solartron SCD 10
  • Solartron
  • analogue computer
  • instruction manual
  • maintenance
  • amplifier

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Instruction Manual for Analogue Computer SCD 10

@) | _---~ / _o are Y = z na \ ipar = / . ty ad a ~ Sea Instruction: Manual for Analogue Computer SCD 10 ~ end THE SOLARTRON ELECTRONIC GROUP LTD FARNBOROUGH - HANTS - ENGLAND — — ———s mM ee cernaain en stich s do CO ee a = To omer SCD 10 ANALOGUE COMPUTER MAINTENANCE MANUAL FOREWORD he SCD 10 analogue computer is a small general purpose machine suitable as a design tool or as an educational aid. It comprises ten drift-corrected D.C. amplifiers, each of which may be used for summing, sign reversing, or integrating; twenty-four potentiometers, a patching panel, computer control facilities and built-in power supplies. An additional ten amplifiers can be incorporated, these can be used as 2 input summers. Simple non-linear elements are included, and servo-multipliers are readily incorporated to expand the scope of the computer. Two SCD 10 machines may be used in conjunction with one another, with one control unit operating both machines. The following problems are typical of those which may be solved on a single SCD 10. (a) Single differential equations of up to fifth order. (b) Two simultaneous differential equations, up to third order. (c) Multiple loop servo-systems. (d) Aerodynamics simulation for guided weapon control systems. ) Dynamical mechanical systems, of for instance, the mass, spring, viscous damping type. Issue : Two Mod. Ret. Date : July, 1963. THE SOLARTRON ELECTRONIC GROUP LIMITED Victoria Road, Farnborough, Hampshire, England. Telephone: Farnborough (Hants) 3000 Telex 8545 Solartron Fnbro Cables: Solartron Farnborough Printed in England = Section 1 Frontispiece Fig. 1 10 11 12 13 14 15 LIST OF Technical Description Installation Test Procedure Breakdown Instructions Components List CONTENTS List of Illustrations Basic SCD 10 Computer Circuit Diagram - Central Overload Indicator Circuit Diagram - + 100V Reference Power Supply Circuit Diagram - Repetitive Timer Circuit Diagram - 24V DC Relay Supply Amplifier Patch Panel Functions Servo Multiplier and Resolver Connections Component Identification Component Identification Component Identification Component Identification Component Identification Component Identilication Component Identification Circuit Diagram SCD 10 Circuit Diagram SCD 10 - Rear View with Panels Removed - Patch Panel (A Bank) - Patch Panel (B Bank) - Control Panel - + 1U0V Reference Supplies - Control Panel, Overload and Timer Circuits - 24V and Fan Supply Unit Sheet 1 _ ) ) Sheet 2 ) Page 18 20 IV 34 34 35 96 Inside Rear Cover am « een a ae a vie ee me erie @. @25.% »® 9,9 ee -7OC r-@re@ re re. ‘Ore erere@re rOre i e@re@ -AQre -OrOQi S@rAie re ea + § a wa VE. AS = Frontispiece Basic SCD 10 i ee Ss a ten: SECTION 1 TECHNICAL DESCRIPTION General 1; The SCD10 Analogue Computer is housed in a console type cabinet. In its simplest form it consists of the following sub- assemblies. (1) Control Panel (2) Patch Panel (3) Five drift-corrected Operational Amplifier Units Type AA.1054 (4) Computer Power Supply Type AS. 1104 (5) Air Blower. Provision is made to extend the scope of the computer by the inclusion of an extra five dual operational amplifiers, (summing only) and also the addition of non-linear units such as servo multipliers, servo resolvers, diode func- tion generators, electronic multipliers (time division). Details of these additional units and their respective conversion kits are given in the appendices at the rear of the manual. 2: The five twin computer amplifiers are carried in one amplifier Mounting Unit Type TX.1269 (Rack A). Since the SCD10 handbook includes copies e instruction manual for the modules iated with the basic SCD10 computer viz: (a) Operational Amplifier Unit AA. 1054 (b) Computer Power Supply Type AS. 1104 (c) Amplifier Mounting Unit Type TX. 1269 these component equipments will not be further considered here. CONTROL PANEL Function 4, The panel provides a central control point for the relays, switching the input resistors and feedback elements associated with the opera- tional amplifiers. It contains certain electronic circuitry for the control and operation of the computer, and provides power reference voltage and amplifier output monitoring facilities. The 24 co-efficient setting potentiometers are also mounted on the control panel. Panel Fittings . 5. The control panel carries the controls, indicator lamp and meter as listed. RV3 REFERENCE potentiometer RV6-RV9 _ Earth-free potentiometers num- bered 1-4 RV10-RV29 Earthed potentiometers SW1l Overload HOLD switch SW2 Amplifier OUTPUT SELECTOR, eleven position SW3 Function selector, eight position: POT SET; PROBLEM CHECK; COMPUTE; HOLD; REP; 1, 2 and 5 sec. SW4 Meter switch, 8 position, +300V, -300V, -200V, +100V, -100V, +30V, V, NULL ‘ SW5 Internal or external *100V key switch for use with RV3 SW7 MAINS switch SW21 Meter switch for 10V range’ SW22 Meter switch for 1V range SW25-SW28 Key switches for RV6-RV9 SW29-SW48 Key switches for RV10-RV29 M1 Meter centre-zero f.s.d. 100p2A -0-100pA LP1 OVERLOAD indicator lamp (red) LPl POT SET indicator lamp (blue) LP3 PROBLEM CHECK indicator lamp -(orange) LP4 COMPUTE indicator lamp (green) LPS HOLD indicator lamp (red) FS1 Mains fuse JK1 Jack socket for monitoring compu - ter amplifier output voltages by means of a digital voltmeter SK2-SK6 Recording outlets (refer para- graph 52) - ELS wee Additional Facilities (Rear Panel) 6. SW10 A three- position selector switch used only when a diode tunction generator is fitted into the computer (refer Appendix B). Central Overload Indicator (Refer Fig. 1) ts The overload circuit gives visual warning at the central control panel when any One or more of the operational amplitiers runs into a signal overload condition, and also when the +300V and -200V HT lines are overloaded. The circuit employed is of the monostable type triggered by positive pulses from a high gain two stage amplifier consisting of two pentode valves connected in cascade to give high sen- sitivity. 8. The overload outputs on the individual amplifiers of rack A are commoned and con- nected through pin 15 of SK14 to the input of the control panel central overload indicator. When additional operational amplifiers are fitted (rack B) the overload outputs from these indi- vidual amplifiers on rack B are commoned and fed to the overload circuit through pin 16 of SK14. In the event of an overload on the +3800 volt and -200 volt lines from the power supply AS.1104, a pulsed overload signal of 18 volts approximately is fed from the AS, 1104 to trigger the central overload circuit. The overload indi- cator lamp on the power supply AS.1104 will also begin flashing, thereby indicating that the overload exists on the main HT lines. This overload Signal from socket SK6 on the HT line of the power Supply is fed through to pins 7 and 8 on SK14 and then into the central overload indi- cator circuit. When servosare fitted, the over- load signal from these are also fed through to the central overload circuit through pins 7and8 on SK14. On applying power to the overload circuit the OVERLOAD indicator lamp will light, but this will be extinguished when the HT supply becomes available and valve V2B passes anode current to pull-in relay RLD/2. All signal inputs applied to the overload circuits are fed through a 1M‘: resistor and thence to the grid of the pentode V12. Output signals from V12 are capacitively coupled onto the input grid of pen- tode V1. Signal input to this grid is limited to approximately L00mV peak: to-peak by the silicon diodes MR1 and MR2. The output from the anode V1 is coupled to the grid of V2A via the clamping circuit C2, MR3, MR4 and R8. The voltage drop across resistor R16 establishes the reference potential of the clamp which is approximately 10 volts negative with respect to the potential of V2B grid. Thus any positive - going pulse having an amplitude greater than 10 volts will trigger the uni-vibrator V2. The filter circuit comprising R7 and C18 serve to reject noise voltages generated by power switching and relay operation which might otherwrse trigger the monostable and signal a spurious overload. In the stable condition V2B will be conducted and V2A will be cut off by virtue of the bias potential developed across the common cathode resistor R10 by V2A anode current, which also holds in relay RLD/2. On the incidence ofa positive pulse of sufficient amplitude (greater than 10 volts) at the grid of V2A, that valve section will pass anode current and regeneratively cut off V2B. Relay RLD/2 will thereon drop out and contact, RLD/1 will close to energise indicator lamp LP1 and thus signal an overload condition, refer Fig.10. The association of V2B anode | < < «< BIMI¢ Pa ei Pd - ISOKS 40K e PL 14/15 Cneenrar— ie | Oasl OA202 [of] = RLIE > Circuit Diagram - Central Overload Indicator ae ee = me ee ee et pe eng spe mee eee enn —, | TY 1151/ iH AOS ciel ORR RN ea tte cee inetn aan swectimenstnle n> Be ~~ er. RIBS mmm aigs SIMS gp Take 7 L 2a $100k a e = A evi & 10K i | “100V INT se > ase sear — am Ss Sy on | 2 pee pan \ ee te. , } GED) a vio Ribs f{ oan aaa aa ®® 210K ont €300V) Fig. 2 Circuit Diagram - current removes the cathode bias potential hold- ing V2A at cut off, and this valve again conducts to restore the monostable to its stable condition. Capacitor C3 will now discharge through resis - tor R14 since it cannot discharge through MR5 and MR6. The negative potential on the grid of V2B will decrease until that valve again passes anode current to pull-in relay RLD/2. The tuume constant of the discharge path is approxi- @tely 1 sec, so that providing the overload is *guntained, it will be signalled bya series of a$hes from LP1. -100 Volts Reference Power Supply (Refer Fig. 2) J. The -100 volts reference supply is derived from a degenerative amplifier type of stabiliser whichitself is powered from stabilised voltages provided by the power supply Type AS, 1104. 10. The circuit employs four valves; a gas discharged voltage reference tube V7, a double triode differentialamplifier V5 drivinga pentode amplifier V3, and a pentode series control valve V4. The power for the circuit is derived from the stabilised -200 volts and -300 volts source, with the exception of V5B anode which is returned to the commonrail. The grid potential of V5B is held at a fixed negative value with respect to the common rail by the voltage reference tube V7 which has a burning voltage of 85 volts. Resistor R32 and capacitor C9 form a filter to *100V Reference Power Supply remove ripple voltage from the reference poten- tual, in the interest of hum reduction. Resis- tors R23 and R24 and RV1 form a sampling chain connected across the common rail and -100 volts rails to provide the signal input to the differential amplifier. Assuming that the potential of the -100 volts output Supply has moved in a negative direction, then the grid potential of V5A will go positive with respect to the cathode. The increased anode current of V5A will develop a greater bias voltage across resistor R33, and since the grid») potential of V5B is held constant by V7, V5B anode current will decrease and the control grid of V3 will move in a positive direc - tion. A resultant negative-going signal appear - ing at the anode of V3 is applied to the grid of the series control valve V4 to increase the effective DC resistance of that valve, and thus of{-set the rise in output voltage which initiates the regulation cycle. Variable resistor RV1 enables the potential of the stabilised reference supply to be accurately set at -100 volts. +100 Volts Reference Power Supply (Refer Fig. 2) ll. The +100 volts reference supply is derived from a degenerative amplifier type of stabiliser, which itself is powered from stabilised voltages provided by the power supply Type AS. 1104. 12, The circuit employs three valves, a double -triode differential amplifier V9 driving ! i eae ge ere ee a pentode amplifier V8, and a pentode series control valve V6. The reference voltage to the differential amplifier is provided by the -100 volts supply. The sampling chain providing the signal input to the differential amplifier is made - up of resistors R45, R46 and RV2. The grid of V9B is returned to the electrical centre of this voltage dividing network, so that the grid poten- tial is essentially that of the common rail, as also is the grid potential of VIA. Assuming that the voltage of the +100 volts supply moves in a negative direction, e.g. to 90 volts, VIB grid potential will move negatively, and the de - creased anode current will reduce the bias voltage developed across R47. The anode aarrent passed by V2A will thereon increase to fuice a negative-going signal at the anode. yin turn drives the grid potential of V8 ina . ive direction, and the resultant positive - going Signal appearing at the anode of V8 is applied to the grid of V6 to decrease the effec- tive d.c. resistance of the series control valve. Variable resistor RV2 enables the potential of the reference supply to be accurately set at +100 volts. Repetitive Timer (Refer Fig. 3) 13. The repetitive timer consists of an elec- tronic timing device triggering a monostable circuit, which in its stable condition switches the instrument to COMPUTE for a periodofone, two or five seconds, as determined by the timer, and in its unstable condition switches the computer for a one-second reset period. The. timing circuit consists of a Miller run - down valve, with the control grid returned to switched positive potentials of approximately 38. .10 and 200 volts to give timing periods of five, two or one second respectively. When the function selector is not set to any one of the three REP. positions, the run-down valve V10 is held at cut-off by the application of negative potentials to the control and suppressor grids. These potentials are derived from a voltage divider (R58, R59, R63) connected across the -300 volts and common rails. The monostable V11 will be in its stable conditions, with V11A conductive and V11B cut-off. The anode relay RLE/2 will therefore be de- energised. 14. On setting the function selector to anyone of the REP. positions, the appropriate positive potential is applied to V10 control grid via switch-bank SW3E, and at the same time the suppressor grid is returned to the common rail via relay contact RLE.1 and switch-bank SW3D. Valve V10 will now pass anode current and the linear run-down of anode potential will be initiated and continue as capacitor C13 dis- charges to raise V10 control grid potential. ——____— oo fisue one 2 908 | -—, + | Te t cas LI | ie) cn oss | KS ae ee ie sential ato 1 Owe | | é | eo } | is Ses0| { tes Eh . — si -—M ; T° - i j j J } tac Fig. 3 Circuit Diagram - Repetitive Timer 4 TY 1151) The talling potential at the anode of V10 is applied to the grid of V11A so that at the end of the run-down (COMPUTE) period VIIA is cut- otf, and V11B regeneratively cut-on to cnergise relay RLE/2. Thereon, contact RLE/2 will change over to:- (1) Energise via switch-bank SW3B indicator lamp LP3 and relay RLA/2, which switches all operational amplifiers from the COMPUTE to RESET conditions. Reter Fig.1. 15. Also following the operation of relay RLE/2, contact RLE/1 will change over to:- i i) Cut-off V10 by disconnecting the gappressor grid from the common rail, aid thus reinstating the negative bias potential applied so that clectrode trom the voltage divider R56, R59 and R63. Capacitor C13 will now charge-up to reset the stage for the next COMPUTE timing period. a _ ov Lad To my UU S&F ve aesser | ons, 16. The charge on capacitor C16 will leak away through resistor R71 until V11B_ grid potential becomes sutticiently negative to cut- off V11B and to cut-on V11A. Relay RLE/2 will then drop out to terminate the one second RESET period, and contacts RLE/2 and RLE/'1 will change over to switch the instrument toa further COMPUTE period and trigger the run- down valve V10. Capacitor C14 and germanium diode MR9 provide a positive pulse at the commencement of each COMPUTE period for the purpose of synchronising external equip- ment. This trigger pulse is available at co- axial socket SK6 at the rear of the cabinet. Meter Circuit (Reter Fig. 4) 17. The centre-zero meter is wired to a double- pole 8- position selector SW4 so that it can be switched to:- (1) Monitor supply voltages (2) Monitor amplifier outputs +24v © TO TERM Ht OF TS. AAO + cv =isc0 REDS 18O wei 180 10 Tema. nOF 75 EARTH Le 4 10 TERM 1O OF TS ‘a i hy 4 TO TERM 14 OF TS iy f ' j BRD $ sera bane inelee ey = LIVE beet 2) | fh 2 | | ———<= ar: ( FAN SUPPLY LL NEUTRAL | | rif 4 more THE TS(TERMIAL STRIP) 1S LOCATED ON THE INSIDE OF CONSOLE RH SIDE VIEWED FROM THE REAR. Fig. 4 Circuit Diagram - 24V DC Relay Supply (3) Monitor external voltages (4) Facilitate setting of co-cflicient potentiometers, lu. Resistors R75, R76 and RLTS are multi- pliers giving full-scale deflections for inputs of *300 volts and #100 volts and’ +30 volts respec - tively. When) monitoring amplifier output voltages, the appropriate amplilier is switched into the meter circuit by the OUTPUT SELEC- TOR SW2, the METER switch being set to posi- tion V. Since, in this condition, the multiplier resistor is R76,. full-scale deflection will be obtained with an input of 4100 volts. easurement of External DC Voltages 19, The meter can also be used for the direct measurement of external d.c. voltages not ex- ceeding *100 volts. When used in this applica - tion the METER selector SW4 is set to the "V" position, and the amplifier OUTPUT SELEC- TOR to OFF, The external voltage is applied across the,violet coloured ''V" socket (line) and any one of the signal ground ''SG" black coloured sockets on the 36-way General Patch Panel. The multiplier resistor is again R76, value 1 megohm, and the input is therefore limited to t100 volts. External measurement of umpli- ficr voltages may also be effected by plugging ina digital voltmeter into the jack socket JK1 located on the control panel. When an external digital voltmeter is used the panel meter becomes ineffective in the NULL and V posi- tions. Setting of Coefficient Potentiometers : The accurate setting of coefficient poten- liometers is facilitated by using the meter as a null-deflection indicator. For this purpose, the METER selector SW4 is set to NULL, and the amplifier OUTPUT SELECTOR SW2 to OFF. The appropriate voltage is then set up on the reference potentiometer RV3, and backed-off by the armature voltage of the coefficient poten- uiometer until the meter shows no deflection. The initial adjustment is made with multiplier resistor R77, value one megohm, in circuit, to give a full-scale deflection of 7100 volts. Push- buttons SW21 and SW22 introduce multiplier resistors R78 and R79 to increase the sensi- tivity of the meter to 10 volts and 1 volt full- scale deflections respectively, thus ensuring accurate final setting of the coefficient poten- tiometer. Switch SW5 enables the high end of the reference potentiometers to be connected to the plus or ‘minus internal or external 100 volts reference supply as required. Relay contacts RLF/1 and RLF/2 automatically select the in- ternal or external *100 volts reference supply in accordance with the setting of the INT/EXT. selector SW6 carried on the rear panel of the cabinet. The armature of the coetlicient poten - tiometer is connected to the meter input by depression ef the appropriate key-switch, a second bank of the switch at the same time con- necting the +100 volts reference supply to the high end of the potentiometer. Measurement of External DC Voltages by Null Method 21. The meter circuit can also be employed in conjunction with the reference potentiometer RV3 to accurately measure d.c. voltages within the range 0 to 7100 volts by the null-deflection method. When used in this application, the METER selector SW4 is set to NULL and the amplifier OUTPUT SELECTOR SW2 set to OFF. The voltage to be measured is applied across the violet coloured 'V" socket (live) and any one of the signal ground "SG" black coloured sockets on the 36-way General Patch Panel. The reference supply of appropriate polarity is switched to the high end of the reference poten- tiometer which is then adjusted for null-deflec- tionon the meter. The value of the input voltage is nowread off the potentiometer dial. The push buttons SW21 and SW22 are again used toin- crease the sensitivity of the meter so that a precise null-indication is readily obtainable. Computer Switching 22. The forward path resistors and the resis- tive and capacitive feedback elements associated with each amplifier form part of the 25-way Amplifier Patch Panel associated with that amplifier. These feedback elements are switched tor integration or summing by three relays (RLA/1, RLB/2, RLC/2) and the SUM/ INT. selector, which components are repeated on all ten 25-way Amplifier Patch Panels. The Control Panel carries a function selector which is virtually a master control Simultaneously switching the forward path resistors and feed- back elements associated with all ten patch . panels to the required configuration. The func- tion selector SW3 is a seven-way, five -bank switch with functional settings designated POT. SET, PROBLEM CHECK, COMPUTE and HOLD. Three repetitive positions are provided whereby the amplifiers can be automatically switched for a one, two or five seconds COM- PUTE period, each followed by a one second RESET period. The switching sequence for each function is described in paragraphs 23-27. The Silicon Diodes MR18-23, connected between the switching contacts and the 24 volts supply, prevent reverse current appearing across the contacts during switching. ee > or Se er ae TY 115 << a Potentiometer Set Condition aos The function selector is turned to POT. SET, and relay RLC/1 and indicator lamp LP2 (POT. SET) will be energised via contact RLB/1, SW3A and SW3B. Relay RLA/2 will be cner- vised via contact RLB/1 and SW3B. Thereon: : : (1) Contact RLA/1 will-change -over to apply the 24 volts d.c. supply to the PROBLEM CHECK (RESET) linc. (2) Contact RLC/1 will change-over to apply the 24 volts d.c. supply to the HOLD OPERATE line. Problem Check Indicator lamp LP3 (PROBLEM CHECK) wwill. be energised via contact RLB/1,SW3A and ““SW3B. Relay RLA/2 will be energised via con- tact RLB/1 and SW3B. (1) Contact RLA/1 will change-over to apply the 24 volts d.c. supply to the PROBLEM CHECK (RESET) line. Compute ” 25. Indicator lamp LP4 (COMPUTE) will be cnergised via contacts RLB/1, RLA/2 and SW3C. No relays will be energised. Hold 26. Relay RLB/2 and indicator lamp LPS (HOLD) will be energised via SW3C. (1) Contact RLB/1 will change-over to apply the 24 volts d.c. supply to the HOLD NORMAL line. Repetitive Positions 27. During the one, two or five seconds timed COMPUTE period, CONTACT RLE/2 will be open; no relays or lines will be energised. The COMPUTE indicator lamp LP4 will be lit via contacts RLB/1. RLA/2 and SW3C. At the end of the COMPUTE period, contact RLE/2 will close to energise the PROBLEM CHECK indi- cator lamp LP3 via SW3B and SW3A, and also relay RLA/2 via SW3B and contact RLB/1. (1) Contact RLA/1 will change over to apply the 24 volts d.c. supply to the PROBLEM CHECK (RESET) line. On the termination of the one second RESET period, contact RLE/2 will open to switch the instrument to a further one, two or five second COMPUTE period. Overload Hold Facility 26. In the event of an amplifier overload be- ing signalled by indicator lamp LPI (overload circuit) the amplifier can be held in the over- load condition by moving toggle-switch SW1 from the OFF position. The HOLD relay RLB/2 and indicator lamp LP5 will then be energised via contact RLD/2, SW1 and SW3C when set to COMPUTE or any of the three repetitive posi- tions. Contact RLB/2 will now close to hold-in relay RLB/2, and contact RLB/1 will close to energise the HOLD NORMAL line to maintain the amplifier in the overload condition. The otftending amplifier can now be identified by in- spection of the neon lamp overload indicators carried on the panels of the individual ampli- fiers. The EXTERNAL HOLD connections are for use when two SCD 19 computers are coupled and operated as a Single installation from one of the Control Panels. De 24 Volts DC Relay#Supply (Refer Fig. 4) 29. The mains power for the 24 volts DC Relay suppl¥ system is taken from the switched side of the mains switch (SW7) and through a mains tapping panel onto a transformer (T2)y This transtormer has series connected primary windings which may be adjusted for inputs of 110V or 220V +45, 10 or 20V by the mains selector panel MSP2, The secondary windings consist of 3 windings connected in series to give approximately 20 volts output. This output is fed to a bridge-connected rectifier network consisting of silicon diodes MR12, MR13, MR16 and MR17 to produce a d.c. output at 24 volts. Resistors R73, R75 and capacitor C17 forma ripple filter, whilst bleed resistors R80, R81 are included to improve the regulation of the supply. 30. The INT./EXT. switch SW6, mounted on the rear panel of the cabinet, is for use when two SCD 10 computers are coupled for opera- tion aS a Single installation from one of the Control Panels. In these circumstances, a common 24 volts supply and +100 volts reference supply should be used. The INT./ EXT. switch disconnects the computer function switching relays from the internal 24 volts d.c. supply and connects them instead to the external 24 volts supply provided by the other SCD 10 computer. At the same time, relay RLF/2 is energised and contacts RLF/1 and RLF/2 change-over to connect the external +100 volts reference supply to the reference and coeffi- cient potentiometer circuits. a 31. The diode function generator selector — ly, whilst the potentiometers are designated by switch (SW10) mounted on the rear panel, is for the numerals 1-4. Associated with each free use only when diode function generators are potentiometer is a Single-pole change-over fitted, The switch has three positions de- switch which, when depressed connects the signated 0, 1 and 2, and should be set at the armature of the appropriate potentiometer to ZERO position if diode function generators are the voltmeter input circuit. not required for operation in the computer. Reterence to appendix B in the manual will tive the functions of the selector switch in the Earthed Potentiometers alternative positions (1 & 2) and the relevant computer function. 34. One extremity of all twenty of. these potentiometers is permanently wired to earth. The high extremities and armatures are Potentiometer Panel internally connected to the ten 25-way Ampli- fier Patch Panels; two potentiometers being 32. The panel carries four earth-free and connected to each panel. The sockets are ‘yenty earthed, wire-wound, ten-turn, helical coloured orange, and are identified by the yntiometers each having a value of 30,000 designations H1, Al, H2 and A2. Associated -fms. with each of the earthed potentiometers, is a - es double - pole change-over switch which, when ! Free Potentiometers . depressed: 33. The armatures, high and low extremities (1) Connects the highend of the selected of the four earth-free potentiometers are potentiometer to the +100 volts internally wired to the 12 orange coloured reference potential, at the same sockets on the General Patch Panel. The time disconnecting it from the patch sockets connected to the armature, high and panel socket. low extremities of the potentiometers are identi- . lied by the designations A. H. and L respective - (2) Connects the armature of the ' ? 3 ' , > s NOTE: The 25-way amplifier patch panels Ai and BI illustrated are. in each case. repeated identically five times on the computer patching desk viz. A2.... AS, and B2.... BS, F therefore. only one of each is illustrated. ay * . , » ‘ Ld 9 . aveqiant & war auaniaet @ wat PaTCh PANEL rate Panty t t i i ‘ f a LJ Cc o f | » omc | 4 . re | : ; | re ae - sr I : 2 31, 7 }——4 — —= —= Stavo PATCH pamtn—— ‘ ' ity 5 u ' Le }+—- p——1. OP -——4 b}——4 op i] a a ‘ ‘oe I * ‘a ’ o4 4 poe pa t-—} ———4 a 4 10} A s $ 10 B = — — = . . . T+) oP, . . 10 on, th war —— — |__ —= GClmenan PATCH sage ‘ ! ’ , + | Gov i sc ’ i Sov oov i +4 --——- }-——_+ -—— 1 n ® “ kc on ° ec | |. Ms a | ae _ ’ 4 | ay h 7” oF «PoP c 1 - 8 € oO ar j A, = : 4 Qe A Ale ; Ay = Higa A," = Aye 5 twat AMPLIFIER PATCH PANEL Fig.5 Amplifier Patch Panel Functions ‘1 selected potentiometer to the volt- meter input circuit. 35. The voltmeter input line is routed serially through all the 24 key switches as a potentio- meter protective measure. The order of connection is given in Fig.9. It follows there - fore, that if any key switch is inadvertently left in the "down" position, it will not be possible to meter the armature voltage of any of the suc- ceeding potentiometers. PATCH PANEL (Refer. Fig. 5) ene ral 6.The Patch Panel consists of: (1) Ten (one per amplifier) similar 25-way Amplifier Patch Panels, each wired with forward path resis - tors and feedback elements, and fitted with a SUM/INTegrate selec - tor and three relays for switching these elements. (2) One 36-way General Patch Panel wired to the earth-free potentio- meters, diode pairs, signal ground, voltmeter input line, recording out- puts, andvarious multiway termina- tions for external control functions. (3) One 36-way patch panel, used only on computers fitted with servo multiplier units. (4) One six-way and one eight-way auxiliary patching panel located immediately above the main body of the Patch Panel but in the same plane as the Control Panel. The functions of all sockets having specific uses are designated by engraved legends, and addi- tionally, some sockets are identified by acolour coding system thus: - Summing junctions - green Amplifier inputs - blue Amplifier outputs - yellow Potentiometer connections - orange Signal Earth - black. AMPLIFIER PATCH PANEL (Refer Fig. 5) General 37. Each Amplifier Patch Panel carries 25 sockets and one SUM/INT. selector. The functions and colour coding of these sockets are listed in Table 1. The Patch Panel Circuit Diagram shows only the Amplifier Patch Panel Al, which is asso- ciated with the similarly designated (Al) ampli- fier. It should be borne in mind that there are in factnine further such patch panels, which,for reasons of space limitation and simplicity are not shown on the circuit diagram. These nine panels are physically identical with panel Al, and differ only in respect of amplifier and co- efficient potentiometer connections. Input Circuit 38. Four input resistors are provided, two (Ra, Rb) having a value of 1 megohm, and two (Rc, Rd) having a value of 100,000 ohms. These forward path components, in conjunction with the feedback resistor Rh (value one megohm) give gains of unity and ten respectively. ‘° Any number of these input resistors can be con- nected in parallel to obtain any integral gain from 1 to 22. Equally, up to four inputs may be summed, the gain to each being dependent on the value of the appropriate input resistor. To compensate for the inherent capacitance between the summing junction and the amplifier output, capacitors Ca - C4 are wired in parallel with the input resistors. Thé remote ends of all four resistors are commoned and relay switched to the summing junction or to signal earth according to the computing function which the amplifier is required to perform. Feedback Elements 39. Two feedback elements are provided, a capacitor Ce for integrating, anda resistor Rh for summing. Capacitor Cf is provided to maintain overall stability of the amplifier. On ‘A' amplifiers capacitor C3 has a value of one microfarad, whilst on 'B' amplifiers it has a value of 0.1 microfarad. The value of resistor Rh is one megohm on both 'A' and ‘B' ampli- fiers. These feedback elements are selected by the contacts of relay RLC/2, which in turn is controlled by the SUM/INT. switch SWA. 40. Bearing in mind that when the installation is switched to COMPUTE at the Control Panel, lines 1, 2 and 3 are not energised, on setting switch SWA to SUM, relay RLC/2 will operate. Contacts RLC/1 and RLGC/2 will thereon change - es 10 we Socket Designation SJ SJ1 SJ2 10 10 OP OPI +100V -100V H1 Al H2 A2 IC IC EC TABLE 1 AMPLIFIER PATCH PANEL SOCKET FUNCTIONS Colour Green Green Green Blue Blue Blue Blue Yellow ) Yellow ) Yellow ) Yellow ) Yellow Red Purple Orange Orange Orange Orange Red ) Red ) White White ) White ) White ) White ) Function Amplifier input Junction Internal summing resistors Amplifier input end of internal feedback element Unity gain input Unity gain input Ten gain input Ten gain input Four internally linked amplifier output terminals Output end of internal feedback element +100V reference voltage -100V reference voltage High end potentiometer 1 Armature potentiometer 1 High end potentiometer 2 Armature potentiometer 2 Input for initial condition voltage (interfally linked) External connector Four internally connected spare multiple links ee see over to connect feedback resistor Rh between sockets OP1 and SJ2. Insertion of shorting links between socket SJ - SJ2, and OP - OP1, will effectively connect the fecdbuck resistor Rh across the summing junction and output of the associated amplifier... The tecdback capaci - tor Ce will be earthed via coftuct RLC/1 and resistor Rg. 41. When switch SWA is set to INT., relay RLC/2 will drop-out, and feedback capacitor Ce will be connected between sockets OPI] and SJ2. Insertion of shorting links between sockets SJ - SJ2, and OP - OP1 will connect the leed- back capacitor across the summing junction and the output of the associated amplifier. The feedback resistor Rh will now be earthed via mtact RLC/2. The integrating circuit now ined is in all but one respect identical to at shown in Fig.12 Chapter 2 for the sum- ming circuit, the exception being that the feed- back resistor is now replaced by the feedback capacitor. Initial Condition Setting Resistors 42. Two resistors Re, Rt are provided to per- mit settingup the initial conditions prior to an integration. Electrically this entails charging up the feedback capacitor Ce to a precise voltage as required by the problem to be solved. When Setting up the initial condition the installa - tion is switched at the Control Panel to POT. SET., and patch panel relay control lines 1 and 3 will be energised. Therefore with the patch panel switch SWA set to INT. , the status of the relays will be:- RLA/1 de-energised RLB/2 energised RLC/2 de-cnergised. In these circumstances: - (1) The input resistors Ra - Rd will be earthed via contact RLB/1. (2) The junction of resistors Re and hf will be connected to the summing junction via contacts RLB/2 and RLA/1. (3) The feedback capacitor Ce will be connected across OPI and SJ2 via contact RLC/1. On patching the 7100 volts reference supply according to the polarity of charge required to the high end (H1) of the potentiome tex and patch - ing the armature (Al) to a 1C socket,the circuit is obtained. In practice the, initial condition voltage is firstly set up on the Control Panel reference potentiometer RV3, and backed off by the amplifier output voltage for zero deflection of the built- in voltmeter. Problem Check Switching 43. With the Control Panel function selector set to PROBLEM CHECK, patch panel relay control line 3 will be energised. On amplifiers switched by SWA to INT., relay RLB/2 will be energised, and relays RLA/1 and RLC/2 de- energised. This is the POT. SET conditions as described in paragraph 42. The initial condi - tions can now be checked as direct voltmeter readings by scanning the outputs of the inte - grating amplifiers using the amplifier OUTPUT SELECTOR SW2. If desired, the coefficient potentiometer setting-up procedure can be repeated as a further check. 44. Onamplifiers switched by SWA to SUM, only relay RLC/2 will be energised, bringing these amplifiers to the COMPUTE condition. The summing amplifier output voltages can now be checked on the built-in meter using the amplifier OUTPUT SELECTOR SW2. Hold Switching 45. With the Control Panel function selector set to HOLD, patch panel relay control kine 2 will be energised. Relay RLA/1 will be operated via switch SWA to the INT. position. In this condition the summing junctions of the input resistors will be earthed via contacts RLB/1 and RLA/1, thus leaving the feedback capacitor Ce charged to the voltage across it at the time computing was arrested. The solution at this instant can now be recorded by a suitable device. Since as a result of grid and leakage currents at the amplifier input, the arrested voltage on the capacitor cannot persist indefinitely, the accuracy of any solution obtained will be reduced as the time lag between the instants of arrest and solution is increased. Amplifier Overload Hold 46. Operation of the OVERLOAD HOLD switch SW1 on the Control Panel will also apply the 24 volts d.c. potential to patch panel relay con- trol line 2. -Relay RLA/1 will then operate to earth the Summing junctions of all integrating amplifers and hold them, and any affected summing amplifiers, in the overload condition. The neon overload indicator lamps on the in- dividualamplifiers can now be inspected and the olfending unit or units located. External Connection 47. The white EC socket is connected to the 24-way socket SK13 carried on the rear panel of the SCD10, to permit the connection of ancil- li . SK/TP.1575 TJ 1231.2 POT ASSY ia 02 123121 A B Cc D i st 6S NOT AH | AA AL |NOT || DH |os |oL joc |1 CH |CA |CL | NC|2 CH |cs I|ct EC |2 DL |BA |DA |DH |3 FL /BS|FS |FH {3 EL |EA|BL |EH |4 ec es |ec | EH 4 /P | 8H | BH | 1/P |5 i/P | BHIBH | t/P|5 EL |EA|BL | EH \6 EL |€S | BL | EH \6 ! ' DL |BA|DA|DH|7 FL |BS |FS |FH|7 CH|CAICL INC |8 CH ICS {CL | €C|8 NoT | AH|AAJAL |X 1g DH {Ds | DL | DcI\9 NOT RECOMMENDED FOR j USE IN SCD 10 , TJ 1231.2 TJ 1231.2 POT ASSY POT ASSY 123123 123125 A B CD AB CD DH | DATDEIN.C {I DH|DS |DL |DC |1 CH|CATCEIN.C 2 CH|CAICL |EC |2 FL BALFAJFH |3 [N.C] BA |N.C.|N.C}3 . t | EL | EA | BL | EH |4 ‘EL Es |Bt |EH |4 t \/P | BH BH | \/P 5 1/P | BHI BH | 1/P |5 Ly | | FF GEER | | EL |EA|BL EH |6 €L | ES |BL EH [6 = FL rm (FA | FH |7 INC. BA |N.C.|N.C)7 CHICA ICL {N.C cu |ca |cu jec | | [DH | DA} DL |N.C]9 DH|DA|DLIN.C|9 | | THE FIRST LETTER REFERS TO THE POTENTIOMETER AND THE SECOND TO HIGH, ARM, LOW, SINE & COSINE. N.C.- NO CONNECTION. Fig. 6 Servo Multiplier and Resolver Connections 12 ° TY 115 lary apparatus to the amplifier associated with that patch panel, the four internally connected white sockets at the top of the patch panel are for use aS a Spare multiple link. GENERAL PATCH PANEL (Refer. Fig. 5) General 48. The General Patch Panel carries 36 sockets, the functions and colour coding of which are listed in Table 2. arth Free Potentiometer Sockets fy qfhe armature (A), high (H) and low (L) mds of the four earth-free potentiometers are vired to the 12 orange coloured patch sockets. Diode Sockets 50. Four pairs of diodes, each pair having one anode to cathode connection, are wired to the A (anode), J (junction) and K (cathode) rows of sockets. These diodes are for use in conjunc- tion with the four earth-free potentiometers for the generation of discontinuous functions. Voltmeter Line 51. The violet coloured '"'V" socket enables external d.c. voltages not exceeding +100 volts to be measured on the internal voltmeter. Meter paragraph 21. ~ Woutlets to Recording Device 52. Four white sockets designated R1, R2, R3 and R4 are wired to four correspondingly desig - nated coaxial