1++RDEuoui(a)++RDEuoui(b)++RDEuoui(c)++RDEuoui(d)ouit10-10ouototouotouot(a)(c)(d)(b)1.1在图示各电路中,E=5V,二极管的正向压降可忽略不计,试分别画出输出电压uo的波形。iUππ2tωouππ2tω1.1:5−=iuuiiuuDuVu=<<0,0,5截止,若VuDuVui5,0,50=>>导通,若R−+iuou+−DE−+utωiu5解:将D开路,求其阳、阴两极开路电压u,若u>0,则D导通;反之D截止。(a)iUππ2tωouππ2tω1.1:R−+iu−+0uDE+−utωiu5(c)iuu−=5VuDuVui5,0,50=><导通,若iiuuDuVu=<>0,0,5截止,若1.2试求输出端Y的电位VY及各元件(R、DA、DB)中通过的电流:(1)VA=VB=0V;(2)VA=+3V,VB=0V;(3)VA=VB=3V。AB+12VDADBR3.9kΩYIAIRIB10sinViutω=iu+−ou+−IORouit10-10ouot1.3图示电路中,若稳压管的稳定电压UZ都是6V,正向导通压降均为0.6V,试画出输出电压uo的波形。++CCU−++CCU+++CCU+++CCU+2.3试判断图示各个电路能不能放大交流信号?为什么?280604020uCE)(mAiCQ交流负载线264810124351C+CCU+CRLR−+0u+2CBRT−+iu125tanCRα=−=−因此RC=2.5KΏ(1)从直流负载线可以看出,UCC=10V2.41C+CCU+CRLR−+0u+2CBRT−+iu80604020)(VuCE)(mAiCQ交流负载线264810124351040CCBECCBBBBUUUIARRRμ−=≈==250BRkΩ⇒=Q点对应的ICQ=2mA,IBQ=40µA,UCEQ=5V1C+CCU+CRLR−+0u+2CBRT−+iu80604020)(VuCE)(mAiCQ交流负载线2648101243532582//1−=−−=−CLRR交流负载线的斜率Ω=kRL75.31C+CCU+CRLR−+0u+2CBRT−+iu80604020)(VuCE)(mAiCQ交流负载线26481012435(2)由交流负载线可知输出电压的最大幅值为(8-5)VuuomimAAUU3==tω)(VuCEOutωCQI)(VuCEQ)(mAiCCEQU1Q2Q交流负载线],min[CEQCEQomUUUUU−−=21uomimAUU=1U2UΩ=++≈kmAImVrEbe96.0)()(26)1(300β-7896.05.150=×−=−==beLCiour//RRUUAβ&&mVAAUUuuomim383===3mVrIriUbeBQbebmim38===iutω)(AiBμBQIBQI)(VuBEtωBEQU)(AiBμ)(VuBEQ1Q2Q−+iuCRLR−+0uCEBRBbiβbiberSR−+SeiibBQBiIi+=BQbmIi=(3)输出首先出现什么失真?80604020)(VuCE)(mAiCQ交流负载线26481012435tω)(VuCEOutωCQI)(VuCEQ)(mAiCCEQU1Q2Q交流负载线],min[CEQCEQomUUUUU−−=21uomimAUU=1U2U(4)增大RL,对直流负载线无影响,但使交流负载线的斜率绝对值减小80604020)(VuCE)(mAiCQ交流负载线26481012435'1'LRtg−=α交流负载线的(5)减小一半βARRURUUIBBCBBECBμ4010==≈−=1C+CCU+CRLR−+0u+2CBRT−+iu降为原来的一半CBCIIIβ=变大CCCCCERIUU−=)...
