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100mV1.00kHz0°V11.00µFC1177.3kΩR117kΩR22100A/AQ15kΩRc3Vcc1kΩ99%Re51FC2605VV2VccVcc0VccSpecificationsIc=1mAVcc=5VB=100Vre=1VPR2ValuesR1=77.3kR2=17kRe=1kRc=5kRe'=99%1μFC310.0kΩLoad4PR1Ic=BIb1mA=100(Ib)Ib=10uAR2=(Vre+Vbe)/10IbR2=(1+0.7)/10*10uR2=17kR1= Vcc(Vre+Vbe)/11IbR1=5(1.7)/11*10uR1=77.3kRc=5V/1mARc=5kRe=Vre/(Ib+Ic)Re=1V/(10u+1m)Re=990Av=-Rc/(1/gm +Re)Av=-5k/(0.7V/1mA)+990Av~-3 V VA
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ID:

ID:

x10
x0.1
Sheet:1
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SPICE
SPICE Netlist

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** Common Emitter Amplifier **
*
* Multisim Live SPICE netlist
*
*

* --- Circuit Topology ---

* Component: C1
cC1 1 2 0.000001

* Component: C2
cC2 6 0 1

* Component: C3
cC3 3 4 0.000001

* Component: Load
rLoad 4 0 10000 VIRTUAL_RESISTANCE_Load

* Component: Q1
qQ1 3 2 5 NPN_Q1 AREA=1

* Component: R1
rR1 Vcc 2 77300 VIRTUAL_RESISTANCE_R1

* Component: R2
rR2 2 0 17000 VIRTUAL_RESISTANCE_R2

* Component: Rc
rRc Vcc 3 5000 VIRTUAL_RESISTANCE_Rc

* Component: Re
xRe 5 6 0 Potentiometer_Re PARAMS: res=1000 posPercent=99

* Component: V1
vV1 1 0 dc 0 ac 1 0
+ distof1 0 0
+ distof2 0 0
+ sin ( 0 0.1 1000 0 0 0 )

* Component: V2
vV2 Vcc 0 dc 5 ac 0 0
+ distof1 0 0
+ distof2 0 0


* --- Circuit Models ---

* Load model
.model VIRTUAL_RESISTANCE_Load r( )

* Q1 model
.model NPN_Q1 NPN( Level=1
+ IS=1e-16 BF=100 NF=1 VAF=1e+30
+ IKF=1e+30 ISE=0 NE=1.5 BR=1 NR=1 VAR=1e+30 IKR=1e+30 ISC=0 NC=2 RB=0
+ IRB=1e+30 RE=0 RC=0 CJE=0 VJE=0.75 MJE=0.33 TF=0 XTF=0 VTF=1e+30
+ ITF=0 PTF=0 CJC=0 VJC=0.75 MJC=0.33 XCJC=1 TR=0 CJS=0 VJS=0.75 MJS=0
+ XTB=0 EG=1.11 XTI=3 KF=0 AF=1 FC=0.5 NS=1
+ XCJC2=1 XCJS=1 TRB1=0 TRB2=0 TRC1=0 TRC2=0 TRE1=0 TRE2=0 TRM1=0 TRM2=0
+ CN=2.2 D=0.52 GAMMA=1e-11 QCO=0 QUASIMOD=0 RCO=0 VG=1.206 VO=10
+
+ )

* R1 model
.model VIRTUAL_RESISTANCE_R1 r( )

* R2 model
.model VIRTUAL_RESISTANCE_R2 r( )

* Rc model
.model VIRTUAL_RESISTANCE_Rc r( )


* --- Subcircuits ---

* Re subcircuit
.subckt Potentiometer_Re T1 T2 T3 PARAMS: res=10k posPercent=50
.PARAM relPos = limit(posPercent * 0.01, 0.0000001, 0.9999999)
r1 T1 T2 {{res}*relPos}
r2 T2 T3 {{res} - {res}*relPos}
.ends

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Common Emitter Amplifier
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s

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Mode

Threshold voltage levels.

Threshold voltage values used in the logic evaluation. See Digital Simulation for more information.

Output low

V

Output low voltage.

Maximum output voltage level to produce a low signal.

Input low threshold

V

Input low threshold voltage.

Maximum input voltage level for the signal to be considered low.

Input high threshold

V

Input high threshold voltage.

Minimum input voltage level for the signal to be considered high.

Output high

V

Output high voltage.

Minimum output voltage level to produce a high signal.

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