电工学课后答案
【解】:(1)
IB1=
E U24 0.6
=3=0.01mA
RB1+(1+β1)RE110+51×27
IC1=β1IB=50×0.5mA
UCE=EC IERE1=EC (1+β1)IB1RE1=24 51×0.01×10 3×27×103=10.23VVB2=
RB2243
EC=×24=8.26V
RB21+RB2243+82
IC2≈IE2=IB2=
IC
VB2 UBE28.26 0.6
=0.956mA=
RE21+RE22510×10 3+7.50.956
=0.019mA50
β2
=
UCE2=E2 IC2RC2 IE2(RE21+RE22)≈EC IC2(RC2+RE21+RE22)=24 0.956(10×103+510+7.5×103)×10 3=15.4V
(2)
Ib2IC2
U1
U0
ri
r0
(3)
图15.11
rbe1=300+(1+β1)rbe2
2626
=300+51×=2952 ≈2.95K
0.5IE1
2626
=300+(1+β2)=300+51×=1687 ≈1.69K
0.956IE2
ri2=[rbe2+(1+β2)RE21]//RB21//RB22≈14K
′=RE1//ri2RE
′]//RB1=321K ri=ri1=[rbe1+(1+β1)REr0=r02≈RC2=10K