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git-svn-id: http://moon:8086/svn/projects/ltspice@388 fda53097-d464-4ada-af97-ba876c37ca34
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* Copyright © Linear Technology Corp. 1998, 1999, 2000. All rights reserved.
*
.subckt 4N25 1 2 3 4 5
R1 N003 2 2
D1 1 N003 LD
G1 3 5 N003 2 .876m
C1 1 2 18p
Q1 3 5 4 [4] NP
.model LD D(Is=1e-20 Cjo=18p)
.model NP NPN(Bf=610 Vaf=140 Ikf=15m Rc=1 Cjc=19p Cje=7p Cjs=7p C2=1e-15)
.ends 4N25
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* Copyright © Linear Technology Corp. 1998, 1999, 2000. All rights reserved.
*
.subckt 4N27 1 2 3 4 5
R1 N003 2 2
D1 1 N003 LD
G1 3 5 N003 2 .582m
C1 1 2 18p
Q1 3 5 4 [4] NP
.model LD D(Is=1e-20 Cjo=18p)
.model NP NPN(Bf=610 Vaf=140 Ikf=15m Rc=1 Cjc=19p Cje=7p Cjs=7p C2=1e-15)
.ends 4N27
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* Copyright © Linear Technology Corp. 1998, 1999, 2000. All rights reserved.
*
.subckt CNY17 1 2 3 4 5
R1 N003 2 2
D1 1 N003 LD
G1 3 5 N003 2 {Igain}
C1 1 2 18p
Q1 3 5 4 [4] NP
.model LD D(Is=1e-20 Cjo=18p)
.model NP NPN(Bf=610 Vaf=140 Ikf=15m Rc=1 Cjc=19p Cje=7p Cjs=7p C2=1e-15)
.ends CNY17
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* Copyright (c) 2017 Linear Technology Corporation. All rights reserved.
* Author: Dan Eddleman
*
* Automotive Transient Models (ISO-16750-2)
***************************************************************
*.subckt 4-2_12V_DirectCurrentSupplyVoltageMinimum + -
*.param Usmin = 6
*V1 + - {Usmin}
*.ends 4-2_12V_DirectCurrentSupplyVoltageMinimum
*.subckt 4-2_24V_DirectCurrentSupplyVoltageMinimum + -
*.param Usmin = 10
*V1 + - {Usmin}
*.ends 4-2_24V_DirectCurrentSupplyVoltageMinimum
*.subckt 4-2_12V_DirectCurrentSupplyVoltageMaximum + -
*.param Usmin = 16
*V1 + - {Usmin}
*.ends 4-2_12V_DirectCurrentSupplyVoltageMaximum
*.subckt 4-2_24V_DirectCurrentSupplyVoltageMaximum + -
*.param Usmin = 32
*V1 + - {Usmin}
*.ends 4-2_24V_DirectCurrentSupplyVoltageMaximum
*.subckt 4-3_12V_Overvoltage + -
*.param Usmax = 24
*V1 + - {Usmax}
*.ends 4-3_12V_Overvoltage
*.subckt 4-3_24V_Overvoltage + -
*.param Usmax = 36
*V1 + - {Usmax}
*.ends 4-3_24V_Overvoltage
.subckt 4-4_12V_SuperimposedAlternatingVoltage + -
.param Umax = 16
.param Upp=4
.param Ri=50m
A1 N001 N004 0 0 0 0 N002 0 MODULATOR mark=25k space=0
V1 N005 - PWL(0 0 10u {Umax-(Upp/2)}) Rser=1m
B1 N001 0 V=2e-3*exp(v(t1)/9.654)
V2 N004 0 PWL(0 0 1u 0 +1u {Upp/2}) Rser=1m
R1 + N003 {Ri}
E1 N003 N005 N002 0 1
V3 t1 0 PWL(0 0 60 60 120 0 180 60 240 0 300 60 360 0 420 60 480 0 540 60 600 0) Rser=1m
.ends 4-4_12V_SuperimposedAlternatingVoltage
.subckt 4-4_24V_SuperimposedAlternatingVoltage + -
.param Umax = 32
.param Upp=10
.param Ri=50m
A1 N001 N004 0 0 0 0 N002 0 MODULATOR mark=25k space=0
V1 N005 - PWL(0 0 10u {Umax-(Upp/2)}) Rser=1m
B1 N001 0 V=2e-3*exp(v(t1)/9.654)
V2 N004 0 PWL(0 0 1u 0 +1u {Upp/2}) Rser=1m
R1 + N003 {Ri}
E1 N003 N005 N002 0 1
V3 t1 0 PWL(0 0 60 60 120 0 180 60 240 0 300 60 360 0 420 60 480 0 540 60 600 0) Rser=1m
.ends 4-4_24V_SuperimposedAlternatingVoltage
.subckt 4-5_12V_SlowDecreaseAndIncreaseOfSupplyVoltage + -
.param Usmin = 6
.param t0=1m
V1 + - PWL(0 0 {t0} 0 +1u {Usmin} {Usmin*60/0.5} 0 {2*Usmin*60/0.5} {Usmin})
.ends 4-5_12V_SlowDecreaseAndIncreaseOfSupplyVoltage
.subckt 4-5_24V_SlowDecreaseAndIncreaseOfSupplyVoltage + -
.param Usmin = 10
.param t0=1m
V1 + - PWL(0 0 {t0} 0 +1u {Usmin} {Usmin*60/0.5} 0 {2*Usmin*60/0.5} {Usmin})
.ends 4-5_24V_SlowDecreaseAndIncreaseOfSupplyVoltage
.subckt 4-6-1_12V_MomentaryDropInSupplyVoltage + -
.param Usmin = 6
V2 + - PWL(0 0 +1u {Usmin} 10 {Usmin} +1m 4.5 10.1 4.5 +1m {Usmin})
.ends 4-6-1_12V_MomentaryDropInSupplyVoltage
.subckt 4-6-1_24V_MomentaryDropInSupplyVoltage + -
.param Usmin = 10
V2 + - PWL(0 0 +1u {Usmin} 10 {Usmin} +1m 9 10.1 9 +1m {Usmin})
.ends 4-6-1_24V_MomentaryDropInSupplyVoltage
.subckt 4-6-2_12V_ResetBehaviourAtVoltageDrop + -
.param Usmin = 6
V1 + - PWL(0 0 +1u {Usmin} 20 {Usmin} +1m {Usmin*0.95} +5 {Usmin*0.95} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.90} +5 {Usmin*0.90} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.85} +5 {Usmin*0.85} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.8} +5 {Usmin*0.8} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.75} +5 {Usmin*0.75} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.7} +5 {Usmin*0.7} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.65} +5 {Usmin*0.65} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.6} +5 {Usmin*0.6} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.55} +5 {Usmin*0.55} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.5} +5 {Usmin*0.5} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.45} +5 {Usmin*0.45} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.4} +5 {Usmin*0.4} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.35} +5 {Usmin*0.35} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.3} +5 {Usmin*0.3} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.25} +5 {Usmin*0.25} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.2} +5 {Usmin*0.2} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.15} +5 {Usmin*0.15} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.1} +5 {Usmin*0.1} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.05} +5 {Usmin*0.05} +1m {Usmin} +10 {Usmin} +1m {Usmin*0} +5 {Usmin*0} +1m {Usmin} +40 {Usmin})
.ends 4-6-2_12V_ResetBehaviourAtVoltageDrop
.subckt 4-6-2_24V_ResetBehaviourAtVoltageDrop + -
.param Usmin = 10
V1 + - PWL(0 0 +1u {Usmin} 20 {Usmin} +1m {Usmin*0.95} +5 {Usmin*0.95} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.90} +5 {Usmin*0.90} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.85} +5 {Usmin*0.85} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.8} +5 {Usmin*0.8} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.75} +5 {Usmin*0.75} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.7} +5 {Usmin*0.7} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.65} +5 {Usmin*0.65} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.6} +5 {Usmin*0.6} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.55} +5 {Usmin*0.55} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.5} +5 {Usmin*0.5} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.45} +5 {Usmin*0.45} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.4} +5 {Usmin*0.4} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.35} +5 {Usmin*0.35} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.3} +5 {Usmin*0.3} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.25} +5 {Usmin*0.25} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.2} +5 {Usmin*0.2} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.15} +5 {Usmin*0.15} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.1} +5 {Usmin*0.1} +1m {Usmin} +10 {Usmin} +1m {Usmin*0.05} +5 {Usmin*0.05} +1m {Usmin} +10 {Usmin} +1m {Usmin*0} +5 {Usmin*0} +1m {Usmin} +40 {Usmin})
.ends 4-6-2_24V_ResetBehaviourAtVoltageDrop
.subckt 4-6-3_12V_StartingProfile + -
.param Ub = 13.5
.param Us6 = 6
.param Us = 6.5
.param tf = 5m
.param t6 = 15m
.param t7 = 50m
.param t8 = 10000m
.param tr = 100m
.param Ri = 10m
.param t0 = 1
R1 + - {Ri}
I3 - + PWL(0 0 +1u {Ub/Ri} {t0} {Ub/Ri} {t0+tf} {Us6/Ri} {t0+tf+t6} {Us6/Ri} {t0+tf+t6+t7} {(Us+1)/Ri} {t0+tf+t6+t7+t8} {(Us+1)/Ri} {t0+tf+t6+t7+t8+tr} {Ub/Ri})
I1 - + SINE(0 {1/Ri} 2 {t0+tf+t6+t7} 0 180 {t8*2})
.ends 4-6-3_12V_StartingProfile
.subckt 4-6-3_24V_StartingProfile + -
.param Ub = 27
.param Us6 = 6
.param Us = 10
.param tf = 10m
.param t6 = 50m
.param t7 = 50m
.param t8 = 1000m
.param tr = 40m
.param Ri = 10m
.param t0 = 1
R1 + - {Ri}
I3 - + PWL(0 0 +1u {Ub/Ri} {t0} {Ub/Ri} {t0+tf} {Us6/Ri} {t0+tf+t6} {Us6/Ri} {t0+tf+t6+t7} {(Us+1)/Ri} {t0+tf+t6+t7+t8} {(Us+1)/Ri} {t0+tf+t6+t7+t8+tr} {Ub/Ri})
I1 - + SINE(0 {1/Ri} 2 {t0+tf+t6+t7} 0 180 {t8*2})
.ends 4-6-3_24V_StartingProfile
.subckt 4-6-4_12V_LoadDumpWithoutSuppressionTestA + -
.param Ua=14
.param Us=101
.param UsClamp={Us}
.param Ri=0.5
.param t0=1
.param Creservoir=0.15 Rshunt=1.55
L1 N004 N005 2m
D1 N007 + Dideal
V2 N007 - PWL(0 0 1m {Ua})
R1 N005 - {Rshunt}
D2 N006 + Dideal
C1 N003 - {Creservoir}
R2 N003 N002 100
V3 N002 - PWL(0 0 1m {Us})
S1 N004 N003 N001 0 Sideal
V4 N001 0 PULSE(0 1 {t0} +1n +1n 1 60 10)
R3 N006 N005 {Ri}
D3 + N008 Dideal
V5 N008 - PWL(0 0 1m {Usclamp})
.model Sideal SW(Ron=1m Roff=100MEG Vt=0.5 Vh=-0.1)
.model Dideal D(Ron=1m Roff=1MEG Vfwd=1m epsilon=10m)
.ic V(n003)={Us}
.ends 4-6-4_12V_LoadDumpWithoutSuppressionTestA
.subckt 4-6-4_24V_LoadDumpWithoutSuppressionTestA + -
.param Ua=28
.param Us=202
.param UsClamp={Us}
.param Ri=1
.param t0=1
.param Creservoir=0.15 Rshunt=1.55
L1 N004 N005 2m
D1 N007 + Dideal
V2 N007 - PWL(0 0 1m {Ua})
R1 N005 - {Rshunt}
D2 N006 + Dideal
C1 N003 - {Creservoir}
R2 N003 N002 100
V3 N002 - PWL(0 0 1m {Us})
S1 N004 N003 N001 0 Sideal
V4 N001 0 PULSE(0 1 {t0} +1n +1n 1 60 10)
R3 N006 N005 {Ri}
D3 + N008 Dideal
V5 N008 - PWL(0 0 1m {Usclamp})
.model Sideal SW(Ron=1m Roff=100MEG Vt=0.5 Vh=-0.1)
.model Dideal D(Ron=1m Roff=1MEG Vfwd=1m epsilon=10m)
.ic V(n003)={Us}
.ends 4-6-4_24V_LoadDumpWithoutSuppressionTestA
.subckt 4-6-4_12V_LoadDumpWithSuppressionTestB + -
.param Ua=14
.param Us=101
.param UsClamp=35
.param Ri=0.5
.param t0=1
.param Creservoir=0.15 Rshunt=1.55
L1 N004 N005 2m
D1 N007 + Dideal
V2 N007 - PWL(0 0 1m {Ua})
R1 N005 - {Rshunt}
D2 N006 + Dideal
C1 N003 - {Creservoir}
R2 N003 N002 100
V3 N002 - PWL(0 0 1m {Us})
S1 N004 N003 N001 0 Sideal
V4 N001 0 PULSE(0 1 {t0} +1n +1n 1 60 10)
R3 N006 N005 {Ri}
D3 + N008 Dideal
V5 N008 - PWL(0 0 1m {Usclamp})
.model Sideal SW(Ron=1m Roff=100MEG Vt=0.5 Vh=-0.1)
.model Dideal D(Ron=1m Roff=1MEG Vfwd=1m epsilon=10m)
.ic V(n003)={Us}
.ends 4-6-4_12V_LoadDumpWithSuppressionTestB
.subckt 4-6-4_24V_LoadDumpWithSuppressionTestB + -
.param Ua=28
.param Us=202
.param UsClamp=58
.param Ri=1
.param t0=1
.param Creservoir=0.15 Rshunt=1.55
L1 N004 N005 2m
D1 N007 + Dideal
V2 N007 - PWL(0 0 1m {Ua})
R1 N005 - {Rshunt}
D2 N006 + Dideal
C1 N003 - {Creservoir}
R2 N003 N002 100
V3 N002 - PWL(0 0 1m {Us})
S1 N004 N003 N001 0 Sideal
V4 N001 0 PULSE(0 1 {t0} +1n +1n 1 60 10)
R3 N006 N005 {Ri}
D3 + N008 Dideal
V5 N008 - PWL(0 0 1m {Usclamp})
.model Sideal SW(Ron=1m Roff=100MEG Vt=0.5 Vh=-0.1)
.model Dideal D(Ron=1m Roff=1MEG Vfwd=1m epsilon=10m)
.ic V(n003)={Us}
.ends 4-6-4_24V_LoadDumpWithSuppressionTestB
.subckt 4-7_12V_ReversedVoltageCase2 + -
V1 + - PWL(0 0 1m {Ua} 100m {Ua} +1u {-1*Ua})
.param Ua=14
.ends 4-7_12V_ReversedVoltageCase2
.subckt 4-9-1_12V_SingleLineInterruption + -
V3 N002 0 PWL(0 -1 {t0} -1 +1u 1 +10 1 +1u -1)
.param Ua=14
.param t0=1
V2 N001 - PWL(0 0 1u {Ua})
S1 N001 + N002 0 SHORT
.model SHORT SW(Ron=1m Roff=10MEG Vt=0 Vh=-.5)
.ends 4-9-1_12V_SingleLineInterruption
.subckt 4-7_24V_ReversedVoltageCase2 + -
V1 + - PWL(0 0 1m {Ua} 100m {Ua} +1u {-1*Ua})
.param Ua=28
.ends 4-7_24V_ReversedVoltageCase2
.subckt 4-9-1_24V_SingleLineInterruption + -
.param Ua=28
.param t0=1
V2 N001 - PWL(0 0 1u {Ua})
S1 N001 + N002 0 SHORT
V3 N002 0 PWL(0 -1 {t0} -1 +1u 1 +10 1 +1u -1)
.model SHORT SW(Ron=1m Roff=10MEG Vt=0 Vh=-.5)
.ends 4-9-1_24V_SingleLineInterruption
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* Copyright (c) 2017 Linear Technology Corporation. All rights reserved.
* Author: Dan Eddleman
*
* Automotive Transient Models (ISO-7637-2)
***************************************************************
.subckt Pulse1_12V + -
.param Ua = 13.5
.param Us = -150
.param Ri = 10
.param td = 2m
.param tr = 1u
.param t1 = 0.5
.param t2 = 200m
.param t3 = 50us
.param t0 = 1m
R2 + - {Ri}
I1 - + EXP(0 {Us/Ri} {t0+t3} {tr/2.2} {t0+t3+(5*tr)} {td/2.305} {t1})
I2 - + PULSE({Ua/Ri} 0 {t0} 1u 1u {t2} {t1})
.ends Pulse1_12V
.subckt Pulse1_24V + -
.param Ua = 27
.param Us = -600
.param Ri = 50
.param td = 1m
.param tr = 3u
.param t1 = 0.5
.param t2 = 200m
.param t3 = 50us
.param t0 = 1m
R2 + - {Ri}
I1 - + EXP(0 {Us/Ri} {t0+t3} {tr/2.2} {t0+t3+(5*tr)} {td/2.305} {t1})
I2 - + PULSE({Ua/Ri} 0 {t0} 1u 1u {t2} {t1})
.ends Pulse1_24V
.subckt Pulse2a_12V + -
.param Ua = 13.5
.param Us = 112
.param Ri = 2
.param td = 50u
.param tr = 1u
.param t1 = 0.2
.param t0 = 1m
R1 + - {Ri}
I3 - + EXP({Ua/Ri} {(Ua+Us)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1})
.ends Pulse2a_12V
.subckt Pulse2a_24V + -
.param Ua = 27
.param Us = 112
.param Ri = 2
.param td = 50u
.param tr = 1u
.param t1 = 0.2
.param t0 = 1m
R1 + - {Ri}
I3 - + EXP({Ua/Ri} {(Ua+Us)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1})
.ends Pulse2a_24V
.subckt Pulse2b_12V + -
.param Ua = 13.5
.param Us = 10
.param Ri = 0.05
.param td = 0.2
.param tr = 1m
.param t12 = 1m
.param t6=1m
.param t0 = 1m
.param ton=1
.param trep = 5
R1 + - {Ri}
I3 - + EXP(0 {Us/Ri} {t0+t12+t6} {tr/2.2} {t0+t12+(2*tr)} {td/2.305} {trep})
I1 - + PULSE({Ua/Ri} 0 {t0} {t12} {t12} {trep-ton} {trep})
.ends Pulse2b_12V
.subckt Pulse2b_24V + -
.param Ua = 27
.param Us = 20
.param Ri = 0.05
.param td = 0.2
.param tr = 1m
.param t12 = 1m
.param t6=1m
.param t0 = 1m
.param ton=1
.param trep = 5
R1 + - {Ri}
I3 - + EXP(0 {Us/Ri} {t0+t12+t6} {tr/2.2} {t0+t12+(2*tr)} {td/2.305} {trep})
I1 - + PULSE({Ua/Ri} 0 {t0} {t12} {t12} {trep-ton} {trep})
.ends Pulse2b_24V
.subckt Pulse3a_12V + -
.param Ua = 13.5V
.param Us = -220V
.param Ri = 50
.param td = 150ns
.param tr = 5ns
.param t1 = 100u
.param t4 = 10ms
.param t5 = 90ms
.param t0 = 1ms
R2 + - {Ri}
I1 - + EXP({Ua/Ri} {(Us+Ua)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1} {t4/t1} {(t4+t5)})
.ends Pulse3a_12V
.subckt Pulse3a_24V + -
.param Ua = 27V
.param Us = -300V
.param Ri = 50
.param td = 150ns
.param tr = 5ns
.param t1 = 100u
.param t4 = 10ms
.param t5 = 90ms
.param t0 = 1ms
R2 + - {Ri}
I1 - + EXP({Ua/Ri} {(Us+Ua)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1} {t4/t1} {(t4+t5)})
.ends Pulse3a_24V
.subckt Pulse3b_12V + -
.param Ua = 13.5
.param Us = 150
.param Ri = 50
.param td = 150n
.param tr = 5n
.param t1 = 100u
.param t4 = 10m
.param t5 = 90m
.param t0 = 1m
R1 + - {Ri}
I2 - + EXP({Ua/Ri} {(Us+Ua)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1} {t4/t1} {(t4+t5)})
.ends Pulse3b_12V
.subckt Pulse3b_24V + -
.param Ua = 27
.param Us = 300
.param Ri = 50
.param td = 150n
.param tr = 5n
.param t1 = 100u
.param t4 = 10m
.param t5 = 90m
.param t0 = 1m
R1 + - {Ri}
I2 - + EXP({Ua/Ri} {(Us+Ua)/Ri} {t0} {tr/2.2} {t0+(2*tr)} {td/2.305} {t1} {t4/t1} {(t4+t5)})
.ends Pulse3b_24V
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* Copyright © Linear Technology Corp. 2012. All rights reserved.
*
.subckt LT1083-12 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
R8 2 N006 242
R9 N006 1 2.074K
D2 3 2 2mA
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=3K)
.ends LT1083-12
*
.subckt LT1083-5 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
R8 2 N006 242
R9 N006 1 730
D2 3 2 2mA
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=3K)
.ends LT1083-5
*
.subckt LT1083 1 2 3
Q1 N003 2 1 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 1 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=3K)
.ends LT1083
*
.subckt LT1084-12 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R8 2 N006 242
R9 N006 1 2.076K
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1084-12
*
.subckt LT1084-3.3 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R8 2 N006 242
R9 N006 1 397
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1084-3.3
*
.subckt LT1084-5 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R8 2 N006 242
R9 N006 1 725
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1084-5
*
.subckt LT1084 1 2 3
Q1 N003 2 1 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 1 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1084
*
.subckt LT1085-12 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R2 2 N006 242
R8 N006 1 2.076K
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=1.2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1085-12
*
.subckt LT1085-3.3 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R2 2 N006 242
R8 N006 1 397
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=1.2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1085-3.3
*
.subckt LT1085-3.6 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R2 2 N006 242
R8 N006 1 455
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=1.2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1085-3.6
*
.subckt LT1085-5 1 2 3
Q1 N003 2 N006 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 N006 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
R2 2 N006 242
R8 N006 1 725
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=1.2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1085-5
*
.subckt LT1085 1 2 3
Q1 N003 2 1 0 N temp=27
Q3 3 N002 2 0 NP
I2 3 N003 55µ
Q7 3 N003 N004 0 NA
Q12 2 N004 N002 0 PA
I1 N004 2 100µ
D1 N002 3 D
G1 N002 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N002 100K
G3 3 N002 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N002 1 1Meg
C3 3 N004 500p Rser=5K
D3 N003 3 D
R7 3 N003 150Meg
D2 3 2 2mA
.model D D(Ron=1 Roff=1T)
.model N NPN(BF=125 Cjc=40p Re=9.87K)
.model NA NPN(BF=125)
.model PA PNP(BF=80)
.model NP NPN(BF=1.2K)
.model 2mA D(Ron=250 Roff=100 Ilimit=2m)
.ends LT1085
*
.subckt LT1086-12 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 N005 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 N005 1Meg
I4 3 2 1.5m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
R8 2 N005 242
R5 1 N005 2.075K
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086-12
*
.subckt LT1086-2.85 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 N005 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 N005 1Meg
I4 3 2 1.5m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
R8 2 N005 242
R5 1 N005 310.1
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086-2.85
*
.subckt LT1086-3.3 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 N005 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 N005 1Meg
I4 3 2 1.5m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
R8 2 N005 242
R5 1 N005 397
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086-3.3
*
.subckt LT1086-3.6 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 N005 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 N005 1Meg
I4 3 2 1.5m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
R8 2 N005 242
R5 1 N005 455
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086-3.6
*
.subckt LT1086-5 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 N005 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 N005 1Meg
I4 3 2 1.5m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
R8 2 N005 242
R5 1 N005 725
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086-5
*
.subckt LT1086 1 2 3
Q1 N002 2 N001 0 N temp=27
R2 N001 1 9.87K
Q3 3 N007 2 0 NP
I2 3 N002 55µ
Q7 3 N002 N006 0 NA
Q12 2 N006 N007 0 PA
I1 N006 2 100µ
D1 N007 3 D
G1 N007 3 3 2 table( 10 0 20 2.8m 35 3m)
R3 3 N007 100K
G3 3 N007 3 2 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 1 1Meg
I4 3 2 2m load
C3 3 N006 500p Rser=5K
D3 N002 3 D
R7 3 N002 150Meg
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=600)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086
*
.subckt LT1086H 1 2 3
Q1 N002 3 N001 0 N temp=27
R2 N001 2 9.87K
Q3 1 N007 3 0 NP
I2 1 N002 55µ
Q7 1 N002 N006 0 NA
Q12 3 N006 N007 0 PA
I1 N006 3 100µ
D1 N007 1 D
G1 N007 1 1 3 table( 10 0 20 2.8m 35 3m)
R3 1 N007 100K
G3 1 N007 1 3 table(0.95,0m 0.969,0.5m 1,1m 1.06,1.5m 1.16,2m 1.34,2.5m 1.64,3m)
R4 N007 2 1Meg
I4 1 3 2m load
C3 1 N006 500p Rser=5K
D3 N002 1 D
R7 1 N002 150Meg
.model N NPN(BF=125 Cjc=40p)
.model NP NPN(BF=300)
.model D D(Ron=1 Roff=1T)
.model PA PNP(BF=80)
.model NA NPN(BF=125)
.ends LT1086H
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+91
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* Copyright © Linear Technology Corp. 2012. All rights reserved.
*
.subckt LT1117-2.85 1 2 3
C4 3 COM 10p
C5 2 COM 5p
M1 N001 N005 2 2 Q temp=27
D1 3 2 IM
D2 3 N001 DO
G2 3 N005 3 2 13n
D3 3 COM 55uA
G1 N005 2 2 N004 100µ
C1 2 N005 50p Rpar=10K noiseless
C3 N001 3 10p
C2 2 N004 5n
A1 2 COM 2 2 2 2 N004 2 OTA g=100u Iout=10u Ref=1.259 Vhigh=10 Vlow=-10
D5 N004 2 10K
R1 2 COM 250 noiseless
R2 COM 1 313 noiseless
.model Q VDMOS(Vto=0 Kp=800K)
.model IM D(Ron=100 Vfwd=.6 epsilon=.2 Ilimit=1.7m noiseless)
.model DO D(Ron=.1 epsilon=.07 Vfwd=.95 Ilimit=.95 noiseless)
.model 55uA D(Ron=10K Roff=10K Ilimit=55u noiseless)
.model 10K D(Ron=1 Roff=10K Vfwd=3m Vrev=3m epsilon=100m revepsilon=100m noiseless)
.ends LT1117-2.85
*
.subckt LT1117-3.3 1 2 3
C4 3 COM 10p
C5 2 COM 5p
M1 N001 N005 2 2 Q temp=27
D1 3 2 IM
D2 3 N001 DO
G2 3 N005 3 2 13n
D3 3 COM 55uA
G1 N005 2 2 N004 100µ
C1 2 N005 50p Rpar=10K noiseless
C3 N001 3 10p
C2 2 N004 5n
A1 2 COM 2 2 2 2 N004 2 OTA g=100u Iout=10u Ref=1.259 Vhigh=10 Vlow=-10
D5 N004 2 10K
R1 2 COM 250 noiseless
R2 COM 1 401 noiseless
.model Q VDMOS(Vto=0 Kp=800K)
.model IM D(Ron=100 Vfwd=.6 epsilon=.2 Ilimit=1.7m noiseless)
.model DO D(Ron=.1 epsilon=.07 Vfwd=.95 Ilimit=.95 noiseless)
.model 55uA D(Ron=10K Roff=10K Ilimit=55u noiseless)
.model 10K D(Ron=1 Roff=10K Vfwd=3m Vrev=3m epsilon=100m revepsilon=100m noiseless)
.ends LT1117-3.3
*
.subckt LT1117-5 1 2 3
C4 3 COM 10p
C5 2 COM 5p
M1 N001 N005 2 2 Q temp=27
D1 3 2 IM
D2 3 N001 DO
G2 3 N005 3 2 13n
D3 3 COM 55uA
G1 N005 2 2 N004 100µ
C1 2 N005 50p Rpar=10K noiseless
C3 N001 3 10p
C2 2 N004 5n
A1 2 COM 2 2 2 2 N004 2 OTA g=100u Iout=10u Ref=1.259 Vhigh=10 Vlow=-10
D5 N004 2 10K
R1 2 COM 250 noiseless
R2 COM 1 735 noiseless
.model Q VDMOS(Vto=0 Kp=800K)
.model IM D(Ron=100 Vfwd=.6 epsilon=.2 Ilimit=1.7m noiseless)
.model DO D(Ron=.1 epsilon=.07 Vfwd=.95 Ilimit=.95 noiseless)
.model 55uA D(Ron=10K Roff=10K Ilimit=55u noiseless)
.model 10K D(Ron=1 Roff=10K Vfwd=3m Vrev=3m epsilon=100m revepsilon=100m noiseless)
.ends LT1117-5
*
.subckt LT1117 1 2 3
C4 3 1 10p
C5 2 1 5p
M1 N001 N005 2 2 Q temp=27
D1 3 2 IM
D2 3 N001 DO
G2 3 N005 3 2 13n
D3 3 1 55uA
G1 N005 2 2 N004 100µ
C1 2 N005 50p Rpar=10K noiseless
C3 N001 3 10p
C2 2 N004 5n
A1 2 1 2 2 2 2 N004 2 OTA g=100u Iout=10u Ref=1.259 Vhigh=10 Vlow=-10
D5 N004 2 10K
.model Q VDMOS(Vto=0 Kp=800K)
.model IM D(Ron=100 Vfwd=.6 epsilon=.2 Ilimit=1.7m noiseless)
.model DO D(Ron=.1 epsilon=.07 Vfwd=.95 Ilimit=.95 noiseless)
.model 55uA D(Ron=10K Roff=10K Ilimit=55u noiseless)
.model 10K D(Ron=1 Roff=10K Vfwd=3m Vrev=3m epsilon=100m revepsilon=100m noiseless)
.ends LT1117
+164
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@@ -0,0 +1,164 @@
* Copyright © Linear Technology Corp. 2012. All rights reserved.
*
.subckt LT1118-2.5 1 2 3 4 5 6
C4 5 1 10p
C5 6 1 50p
M1 N005 N008 6 6 Q temp=27
D2 5 N005 DO
G2 5 N008 5 6 .5µ
G1 N008 6 6 N007 100µ
C1 6 N008 .1p Rpar=10K noiseless
C3 N005 5 10p
C2 6 N007 50p Rpar=2Meg Rser=30K
A1 4 1 6 6 6 6 N007 6 OTA g=50u Iout=10u Ref=1.225 Vhigh=1 Vlow=-1
A2 5 1 1 1 1 1 N004 1 SCHMITT Vt=2 Vh=1m
A3 3 1 1 1 1 1 N002 1 SCHMITT Vt=1.4 Vh=1m
C6 3 1 1p
A4 1 N002 1 N004 1 1 N003 1 AND tau=1u
D4 3 1 1uA m=.1
S1 6 N008 1 N003 SD
S2 6 N007 1 N003 SD
D1 1 6 S
S3 N009 1 1 N003 SD
G3 1 N009 6 N007 100µ
C7 N009 1 .1p Rpar=10K noiseless
M2 6 N009 1 1 Q temp=27
D5 6 5 S
D6 N009 1 L
D7 4 1 1uA m=.35
D3 5 1 1uA
S4 5 1 N003 1 600uA
D8 6 N007 L N=3
D9 N007 6 L N=3
R3 6 4 51.4K
C9 4 1 .5p Rpar=50K
.model Q VDMOS(Vto=2m Kp=100)
.model DO D(Ron=.25 epsilon=.1 Vfwd=.8 Ilimit=1.2 noiseless)
.model 1uA D(Ron=50K Roff=50K Ilimit=1u noiseless)
.model SD SW(Ron=100 Roff=1G Vt=-.5 Vh=-.4)
.model S D(Ron=1 epsilon=2)
.model L D(Ron=100 Vfwd=110m epsilon=24m)
.model 600uA SW(Ron=50 Roff=1G Vt=.5 Vh=-.4 Ilimit=600u level=2)
.ends LT1118-2.5
*
.subckt LT1118-2.85 1 2 3 4 5 6
C4 5 1 10p
C5 6 1 50p
M1 N005 N008 6 6 Q temp=27
D2 5 N005 DO
G2 5 N008 5 6 .5µ
G1 N008 6 6 N007 100µ
C1 6 N008 .1p Rpar=10K noiseless
C3 N005 5 10p
C2 6 N007 50p Rpar=2Meg Rser=30K
A1 4 1 6 6 6 6 N007 6 OTA g=50u Iout=10u Ref=1.225 Vhigh=1 Vlow=-1
A2 5 1 1 1 1 1 N004 1 SCHMITT Vt=2 Vh=1m
A3 3 1 1 1 1 1 N002 1 SCHMITT Vt=1.4 Vh=1m
C6 3 1 1p
A4 1 N002 1 N004 1 1 N003 1 AND tau=1u
D4 3 1 1uA m=.1
S1 6 N008 1 N003 SD
S2 6 N007 1 N003 SD
D1 1 6 S
S3 N009 1 1 N003 SD
G3 1 N009 6 N007 100µ
C7 N009 1 .1p Rpar=10K noiseless
M2 6 N009 1 1 Q temp=27
D5 6 5 S
D6 N009 1 L
D7 4 1 1uA m=.35
D3 5 1 1uA
S4 5 1 N003 1 600uA
D8 6 N007 L N=3
D9 N007 6 L N=3
R3 6 4 65.39K
C9 4 1 .5p Rpar=50K
.model Q VDMOS(Vto=2m Kp=100)
.model DO D(Ron=.25 epsilon=.1 Vfwd=.8 Ilimit=1.2 noiseless)
.model 1uA D(Ron=50K Roff=50K Ilimit=1u noiseless)
.model SD SW(Ron=100 Roff=1G Vt=-.5 Vh=-.4)
.model S D(Ron=1 epsilon=2)
.model L D(Ron=100 Vfwd=110m epsilon=24m)
.model 600uA SW(Ron=50 Roff=1G Vt=.5 Vh=-.4 Ilimit=600u level=2)
.ends LT1118-2.85
*
.subckt LT1118-5 1 2 3 4 5 6
C4 5 1 10p
C5 6 1 50p
M1 N005 N008 6 6 Q temp=27
D2 5 N005 DO
G2 5 N008 5 6 .5µ
G1 N008 6 6 N007 100µ
C1 6 N008 .1p Rpar=10K noiseless
C3 N005 5 10p
C2 6 N007 50p Rpar=2Meg Rser=30K
A1 4 1 6 6 6 6 N007 6 OTA g=50u Iout=10u Ref=1.225 Vhigh=1 Vlow=-1
A2 5 1 1 1 1 1 N004 1 SCHMITT Vt=2 Vh=1m
A3 3 1 1 1 1 1 N002 1 SCHMITT Vt=1.4 Vh=1m
C6 3 1 1p
A4 1 N002 1 N004 1 1 N003 1 AND tau=1u
D4 3 1 1uA m=.1
S1 6 N008 1 N003 SD
S2 6 N007 1 N003 SD
D1 1 6 S
S3 N009 1 1 N003 SD
G3 1 N009 6 N007 100µ
C7 N009 1 .1p Rpar=10K noiseless
M2 6 N009 1 1 Q temp=27
D5 6 5 S
D6 N009 1 L
D7 4 1 1uA m=.35
D3 5 1 1uA
S4 5 1 N003 1 600uA
D8 6 N007 L N=3
D9 N007 6 L N=3
R3 6 4 151.9K
C9 4 1 .5p Rpar=50K
.model Q VDMOS(Vto=2m Kp=100)
.model DO D(Ron=.25 epsilon=.1 Vfwd=.8 Ilimit=1.2 noiseless)
.model 1uA D(Ron=50K Roff=50K Ilimit=1u noiseless)
.model SD SW(Ron=100 Roff=1G Vt=-.5 Vh=-.4)
.model S D(Ron=1 epsilon=2)
.model L D(Ron=100 Vfwd=110m epsilon=24m)
.model 600uA SW(Ron=50 Roff=1G Vt=.5 Vh=-.4 Ilimit=600u level=2)
.ends LT1118-5
*
.subckt LT1118 1 2 3 4 5 6
C4 5 1 10p
C5 6 1 50p
M1 N005 N008 6 6 Q temp=27
D2 5 N005 DO
G2 5 N008 5 6 .5µ
G1 N008 6 6 N007 100µ
C1 6 N008 .1p Rpar=10K noiseless
C3 N005 5 10p
C2 6 N007 50p Rpar=2Meg Rser=30K
A1 4 1 6 6 6 6 N007 6 OTA g=50u Iout=10u Ref=1.225 Vhigh=1 Vlow=-1
A2 5 1 1 1 1 1 N004 1 SCHMITT Vt=2 Vh=1m
A3 3 1 1 1 1 1 N002 1 SCHMITT Vt=1.4 Vh=1m
C6 3 1 1p
A4 1 N002 1 N004 1 1 N003 1 AND tau=1u
D4 3 1 1uA m=.1
S1 6 N008 1 N003 SD
S2 6 N007 1 N003 SD
D1 1 6 S
S3 N010 1 1 N003 SD
G3 1 N010 6 N007 100µ
C7 N010 1 .1p Rpar=10K noiseless
M2 6 N010 1 1 Q temp=27
D5 6 5 S
D6 N010 1 L
D7 4 1 1uA m=.35
D3 5 1 1uA
S4 5 1 N003 1 600uA
D8 6 N007 L N=3
D9 N007 6 L N=3
C9 4 1 .5p
.model Q VDMOS(Vto=2m Kp=100)
.model DO D(Ron=.25 epsilon=.1 Vfwd=.8 Ilimit=1.2 noiseless)
.model 1uA D(Ron=50K Roff=50K Ilimit=1u noiseless)
.model SD SW(Ron=100 Roff=1G Vt=-.5 Vh=-.4)
.model S D(Ron=1 epsilon=2)
.model L D(Ron=100 Vfwd=110m epsilon=24m)
.model 600uA SW(Ron=50 Roff=1G Vt=.5 Vh=-.4 Ilimit=600u level=2)
.ends LT1118
+125
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* Copyright © Linear Technology Corp. 2017. All rights reserved.
*
.subckt LT1121-3.3 1 2 3 4 5 6 7 8
Q1 N9 N1 8 0 PN
Q2 N1 N2 3 0 NA
Q3 N2 N3 N5 0 NP temp=27
C1 N2 N3 20p Rser=300K
Q4 N3 N3 N4 0 NP 10 temp=27
R3 N5 3 2.4K
C2 1 N3 20p Rser=20K
Q5 1 1 N6 0 FB temp=27
R6 N4 N6 81K
I1 8 5 6µ load
G2 8 N3 N8 3 7µ
G1 8 N2 N8 3 7µ
R1 8 N1 150K
R8 N9 1 1.1
D3 0 N10 F
G3 0 N10 1 N9 10m
Q7 N3 N1 N9 0 P 10m
D1 8 1 X
C5 1 3 10p
C7 8 3 10p
G5 N10 0 N8 3 table(0 3m 1 0)
D2 5 3 A
D4 3 5 B
I2 0 N10 3m
C4 8 N2 50p Rser=.1G
C8 8 N3 500p Rser=.1G Rpar=3G
R4 N4 3 2K
A1 5 3 3 3 3 3 N8 3 SCHMITT vt=.95 vh=1m trise=2u
A2 N10 0 N2 N2 N2 N2 3 N2 VARISTOR
.model PN PNP(BF=25 Cje=500p Cjc=500p)
.model NA NPN(BF=150K Cje=1p Cjc=1p Re=40)
.model NP NPN(Cje=10p Cjc=10p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1121-3.3
*
.subckt LT1121-5 1 2 3 4 5 6 7 8
Q1 N9 N1 8 0 PN
Q2 N1 N2 3 0 NA
Q3 N2 N3 N5 0 NP temp=27
C1 N2 N3 20p Rser=300K
Q4 N3 N3 N4 0 NP 10 temp=27
R3 N5 3 2.4K
C2 1 N3 20p Rser=20K
Q5 1 1 N6 0 FB temp=27
R6 N4 N6 135.5K
I1 8 5 6µ load
G2 8 N3 N8 3 7µ
G1 8 N2 N8 3 7µ
R1 8 N1 150K
R8 N9 1 1.1
D3 0 N10 F
G3 0 N10 1 N9 10m
Q7 N3 N1 N9 0 P 10m
D1 8 1 X
C5 1 3 10p
C7 8 3 10p
G5 N10 0 N8 3 table(0 3m 1 0)
D2 5 3 A
D4 3 5 B
I2 0 N10 3m
C4 8 N2 50p Rser=.1G
C8 8 N3 500p Rser=.1G Rpar=3G
R4 N4 3 2K
A1 5 3 3 3 3 3 N8 3 SCHMITT vt=.95 vh=1m trise=2u
A2 N10 0 N2 N2 N2 N2 3 N2 VARISTOR
.model PN PNP(BF=25 Cje=500p Cjc=500p)
.model NA NPN(BF=150K Cje=1p Cjc=1p Re=40)
.model NP NPN(Cje=10p Cjc=10p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1121-5
*
.subckt LT1121 1 2 3 4 5 6 7 8
Q1 N9 N1 8 0 PN
Q2 N1 N2 3 0 NA
Q3 N2 N3 N5 0 NP temp=27
C1 N2 N3 20p Rser=300K
Q4 N3 N3 N4 0 NP 10 temp=27
R3 N5 3 2.4K
C2 1 N3 20p Rser=20K
Q5 1 2 N6 0 FB temp=27
R6 N4 N6 95.4K
I1 8 5 6µ load
G2 8 N3 N8 3 7µ
G1 8 N2 N8 3 7µ
R1 8 N1 150K
R8 N9 1 1.1
D3 0 N10 F
G3 0 N10 1 N9 10m
Q7 N3 N1 N9 0 P 10m
D1 8 1 X
C5 1 3 10p
C7 8 3 10p
G5 N10 0 N8 3 table(0 3m 1 0)
D2 5 3 A
D4 3 5 B
I2 0 N10 3m
C4 8 N2 50p Rser=.1G
C6 2 3 10p
C8 8 N3 500p Rser=.1G Rpar=3G
R4 N4 3 2K
A1 5 3 3 3 3 3 N8 3 SCHMITT vt=.95 vh=1m trise=2u
A2 N10 0 N2 N2 N2 N2 3 N2 VARISTOR
.model PN PNP(BF=25 Cje=500p Cjc=500p)
.model NA NPN(BF=150K Cje=1p Cjc=1p Re=40)
.model NP NPN(Cje=10p Cjc=10p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1121
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* Copyright © Linear Technology Corp. 2004. All rights reserved.
*
.subckt LT1129-3.3 1 2 3 4 5
Q1 N009 N001 5 0 PN
Q2 N001 N002 3 0 NA
Q3 N002 N003 N006 0 NP temp=27
C1 N002 N003 20p Rser=200K
Q4 N003 N003 N005 0 NP 10 temp=27
R2 N005 3 2K
R3 N006 3 2.4K
C2 1 N003 20p Rser=2K
Q5 1 2 N007 0 FB temp=27
R6 N007 N005 80.9K
I1 5 4 6µ load
G2 5 N003 N008 3 7µ
G1 5 N002 N008 3 7µ
R1 5 N001 37K
R8 N009 1 .23
A2 N010 0 N002 N002 N002 N002 3 N002 VARISTOR
D3 0 N010 F
G3 0 N010 1 N009 10m
Q7 N003 N001 N009 0 P 1m
D1 5 1 X
C5 1 3 10p
C7 5 3 10p
G5 N010 0 N008 3 table(0 3m 1 0)
A1 4 3 3 3 3 3 N008 3 SCHMITT Vt=.95 Vh=1m trise=2m
D2 4 3 A
D4 3 4 B
I2 0 N010 3m
C4 5 N002 5p Rser=.4G
C6 2 3 1p
C8 5 N003 500p Rser=.27G Rpar=3G
.model PN PNP(BF=25 Cje=500p Cjc=500p tf=100n)
.model NA NPN(BF=1Meg Cje=1p Cjc=1p Re=10)
.model NP NPN(Cje=5p Cjc=5p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1129-3.3
*
.subckt LT1129-5 1 2 3 4 5
Q1 N009 N001 5 0 PN
Q2 N001 N002 3 0 NA
Q3 N002 N003 N006 0 NP temp=27
C1 N002 N003 20p Rser=200K
Q4 N003 N003 N005 0 NP 10 temp=27
R2 N005 3 2K
R3 N006 3 2.4K
C2 1 N003 20p Rser=2K
Q5 1 2 N007 0 FB temp=27
R6 N007 N005 135.1K
I1 5 4 6µ load
G2 5 N003 N008 3 7µ
G1 5 N002 N008 3 7µ
R1 5 N001 37K
R8 N009 1 .23
A2 N010 0 N002 N002 N002 N002 3 N002 VARISTOR
D3 0 N010 F
G3 0 N010 1 N009 10m
Q7 N003 N001 N009 0 P 1m
D1 5 1 X
C5 1 3 10p
C7 5 3 10p
G5 N010 0 N008 3 table(0 3m 1 0)
A1 4 3 3 3 3 3 N008 3 SCHMITT Vt=.95 Vh=1m trise=2m
D2 4 3 A
D4 3 4 B
I2 0 N010 3m
C4 5 N002 5p Rser=.4G
C6 2 3 1p
C8 5 N003 500p Rser=.27G Rpar=3G
.model PN PNP(BF=25 Cje=500p Cjc=500p tf=100n)
.model NA NPN(BF=1Meg Cje=1p Cjc=1p Re=10)
.model NP NPN(Cje=5p Cjc=5p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1129-5
*
.subckt LT1129 1 2 3 4 5
Q1 N009 N001 5 0 PN
Q2 N001 N002 3 0 NA
Q3 N002 N003 N006 0 NP temp=27
C1 N002 N003 20p Rser=200K
Q4 N003 N003 N005 0 NP 10 temp=27
R2 N005 3 2K
R3 N006 3 2.4K
C2 1 N003 20p Rser=2K
Q5 1 2 N007 0 FB temp=27
R6 N007 N005 95.2K
I1 5 4 6µ load
G2 5 N003 N008 3 7µ
G1 5 N002 N008 3 7µ
R1 5 N001 37K
R8 N009 1 .23
A2 N010 0 N002 N002 N002 N002 3 N002 VARISTOR
D3 0 N010 F
G3 0 N010 1 N009 10m
Q7 N003 N001 N009 0 P 1m
D1 5 1 X
C5 1 3 10p
C7 5 3 10p
G5 N010 0 N008 3 table(0 3m 1 0)
A1 4 3 3 3 3 3 N008 3 SCHMITT Vt=.95 Vh=1m trise=2m
D2 4 3 A
D4 3 4 B
I2 0 N010 3m
C4 5 N002 5p Rser=.4G
C6 2 3 1p
C8 5 N003 500p Rser=.27G Rpar=3G
.model PN PNP(BF=25 Cje=500p Cjc=500p tf=100n)
.model NA NPN(BF=1Meg Cje=1p Cjc=1p Re=10)
.model NP NPN(Cje=5p Cjc=5p BF=150)
.model FB NPN(Cje=5p Cjc=5p BF=200)
.model F D(Ron=1m Roff=10K)
.model P PNP(BF=100)
.model X D(Ron=10 Vfwd=30)
.model A D(Ron=110 Vfwd=6.6)
.model B D(Ron=2 Vrev=7.5 Vfwd=.6)
.ends LT1129
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* Copyright © Linear Technology Corp. 2012. All rights reserved.
*
.subckt LT1175-5 1 2 3 4 5 6 7
C4 1 5 10p
C5 3 5 5p
M1 N004 N009 3 3 Q temp=27
D3 5 1 10uA
G1 N009 3 3 N008 100µ
C1 3 N009 1p Rpar=10K noiseless
C3 N004 1 10p Rpar=2.5
C2 3 N008 250p Rser=500 Cpar=100p noiseless
A1 4 5 3 3 3 3 N008 3 OTA g=76u Iout=20u Ref=-5 Vhigh=10 Vlow=-10
D5 3 N008 200K
C9 2 5 10p
C10 7 5 10p
D6 5 4 10uA m=1.2
C11 4 5 1p
D7 6 1 1uA
D8 6 5 3uA
A2 6 5 5 5 5 5 N001 5 SCHMITT Vt=1.65 Vh=1m Vhigh=2 Rout=10K
A3 6 5 5 5 5 N001 5 5 SCHMITT Vt=-1.65 Vh=1m Vhigh=2 Rout=10K Cout=100p
S1 3 N008 5 N001 SD
S2 1 5 N001 5 IQ
G2 N009 3 3 1 12n
C6 N004 2 10p Rpar=2.5
C7 N004 7 20p Rpar=1.25
G4 N009 3 N006 N004 .5 Vto=.25 dir=-1
B1 1 N006 I=1m/ max(13.5,V(3,1)) Rpar=10K
C12 N006 1 10p
G3 1 5 1 N004 4.16m
G5 1 5 2 N004 4.16m
G6 1 5 7 N004 8.32m
D1 5 3 10uA m=.1
S4 3 N009 5 N001 SD
.model Q VDMOS(Vto=0 Kp=100 Vto=-10m pchan)
.model 10uA D(Ron=100K Roff=100K Ilimit=10u noiseless)
.model 200K D(Ron=100 Roff=200K Vfwd=.15 Vrev=0 epsilon=.1 revepsilon=.1 noiseless)
.model 1uA D(Ron=100K epsilon=.5 Ilimit=1u noiseless Vrev=8.5 revepsilon=.5 Vfwd=2)
.model 3uA D(Ron=100K epsilon=.5 Ilimit=3u noiseless Vfwd=1 noiseless)
.model SD SW(Ron=1K Roff=1G Vt=-.5 Vh=-.4 noiseless)
.model IQ SW(Ron=2K Roff=1G Vt=.5 Vh=-.4 Ilimit=35u level=2 noiseless)
.ends LT1175-5
*
.subckt LT1175 1 2 3 4 5 6 7
C4 1 5 10p
C5 3 5 5p
M1 N004 N008 3 3 Q temp=27
D3 5 1 10uA
G1 N008 3 3 N007 100µ
C1 3 N008 1p Rpar=10K noiseless
C3 N004 1 10p Rpar=2.5
C2 3 N007 250p Rser=500 Cpar=100p noiseless
A1 4 5 3 3 3 3 N007 3 OTA g=100u Iout=20u Ref=-3.8 Vhigh=10 Vlow=-10
D5 3 N007 200K
C9 2 5 10p
C10 7 5 10p
D6 5 4 10uA m=7.5m
C11 4 5 1p
D7 6 1 1uA
D8 6 5 3uA
A2 6 5 5 5 5 5 N001 5 SCHMITT Vt=1.65 Vh=1m Vhigh=2 Rout=10K
A3 6 5 5 5 5 N001 5 5 SCHMITT Vt=-1.65 Vh=1m Vhigh=2 Rout=10K Cout=100p
S1 3 N007 5 N001 SD
S2 1 5 N001 5 IQ
G2 N008 3 3 1 12n
C6 N004 2 10p Rpar=2.5
C7 N004 7 20p Rpar=1.25
G4 N008 3 N006 N004 .5 Vto=.25 dir=-1
B1 1 N006 I=1m/ max(13.5,V(3,1)) Rpar=10K
C12 N006 1 10p
G3 1 5 1 N004 4.16m
G5 1 5 2 N004 4.16m
G6 1 5 7 N004 8.32m
D1 5 3 10uA m=.1
S4 3 N008 5 N001 SD
.model Q VDMOS(Vto=0 Kp=100 Vto=-10m pchan)
.model 10uA D(Ron=100K Roff=100K Ilimit=10u noiseless)
.model 200K D(Ron=100 Roff=200K Vfwd=.15 Vrev=0 epsilon=.1 revepsilon=.1 noiseless)
.model 1uA D(Ron=100K epsilon=.5 Ilimit=1u noiseless Vrev=8.5 revepsilon=.5 Vfwd=2)
.model 3uA D(Ron=100K epsilon=.5 Ilimit=3u noiseless Vfwd=1 noiseless)
.model SD SW(Ron=1K Roff=1G Vt=-.5 Vh=-.4 noiseless)
.model IQ SW(Ron=2K Roff=1G Vt=.5 Vh=-.4 Ilimit=35u level=2 noiseless)
.ends LT1175
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* Copyright © Linear Technology Corp. 2012. All rights reserved.
*
.subckt LT1185 1 2 3 4 5
C4 3 1 10p
C5 2 1 1p
C1 5 1 10p
M1 N009 1 5 5 R temp=27
D1 N009 3 1uA
A1 N004 1 N007 3 3 3 N008 3 OTA g=1m Ref=0 Iout=100u Cout=1.2n Rout=350K Vhigh=1 Vlow=-1
R3 N010 3 .055
A2 N010 N011 3 3 3 3 N008 3 OTA Isrc=.1u Isink=-1m asym g=10m Ref=.2 Vhigh=100 Vlow=-100
A3 N010 N009 3 3 3 3 N008 3 OTA Isrc=.1u Isink=-1m asym g=50m Ref=-7m Vhigh=100 Vlow=-100
C2 N011 3 10p Rpar=4.2K noiseless
B1 N011 3 I=1/13K +1m/min(-13,V(3,2))
C3 N009 3 10p Rpar=360 noiseless
A4 N009 3 3 3 3 3 N007 3 SCHMITT Vt=195u Vh=10u trise=1u
D2 1 N005 Q1
D3 1 3 Q2
G2 1 N004 5 2 100µ
C6 N004 1 20p Rpar=10K Rser=5K
C9 4 3 5p
R6 4 N005 70m
D4 2 3 B
M2 N005 N008 N010 N010 Q temp=27
G1 1 3 N010 3 .44
G3 1 3 N008 3 4m Vto=0 dir=1
.model R VDMOS(Vto=2.39 Kp=50 pchan)
.model 1uA D(Ron=50K Roff=50K Ilimit=2u noiseless)
.model Q VDMOS(Vto=0 Kp=50 lambda=.3)
.model Q1 D(Ron=1K epsilon=2 Ilimit=2.1m noiseless)
.model Q2 D(Ron=15K Vfwd=19 epsilon=2 noiseless)
.model B D(Ron=1.5Meg Roff=1.5Meg Ilimit=.7u)
.ends LT1185
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