解: (1)2=B +15V R2 V3、V组成镜像恒流源l3=c4所以 1+ R239K (2)VV组成微电流恒流源 R1 In 15v
4-1 解: 1 2 1 1 1 2 2 4 3 3 2 3 3 4 3 4 2 2 ln 2 2 1 2 30 2 1 C R C T R C C C R C C C B E R I I I U R V V I I I I I I V V I I R U I = + = + = = = − = ( ) 、 组成微电流恒流源 、 组成镜像恒流源 所以 ()
4-2 R V、V2组成比例恒流源 R ,2R2 C2 V、V组成比例恒流源 R 1 ,3R3 C4 2R
4-2 4 3 2 1 1 0 4 1 2 3 0 4 4 3 3 4 2 1 1 2 1 , , 3 1 3 2 1 2 C C C C C C i i C C C C C C C C I I I I I I I I I I I I I I R R I I V V R R I I V V = = = = = = 、 组成比例恒流源 、 组成比例恒流源
CC R BEl R=Ur In-1 s rID e U In r C2≈ R2 R R R
4-3 2 2 2 2 1 2 2 ln ln ln 1 1 1 R I I U R I I U I I I I U I R U I I S r T S E T C R S E B E R T E r = = =
4-5 XLEE-U 解:(1)Icz-2KE BE 根据戴维南定理将原电路化简 U。R L Rc+Ru RI R R RC=R‖R CE20 cC-Ic20Rc+0.7 (2)K nd⊥RB++B·2R CMR =-|= EE C 2(Rg+/) BRd=2(RB+re), roc=Ro
4-5 i d B b e O C C B b e B b e E u C u d CMR CE Q CC C Q C C C L C L CC L CC E E E B E C Q R R r R R R r R r R A A K U U I R R R R R R U R U R U U I = + = + + + • = = = − + = + = − = (3) 2( ), 2( ) 2 (2) | | 0.7 || 2 1 1 ' 2 ' 2 ' ' 2 根据戴维南定理将原电路化简 解:()
R R B + R B EE