内容发布更新时间 : 2024/5/10 23:02:50星期一 下面是文章的全部内容请认真阅读。
点,得
IBQ?0.04mA,ICQ?1.6mA,UCEQ?8.8V(3)Uc1?0.7V,右正左负,Uc2?8.8V,左正右负。 10.7
IB?IC/??2mA/40?0.05mA RB?VCC/IB?10/0.05?200K? RC?(VCC?VCE)/IC?(10?5)/2?2.5K?
10.8
(a) 截止失真,降小RB或提高VCC (b) 既有饱和,又有截止失真,降小输入信号 (c) 饱和失真,降小VCC或提高RC , RB 10.9
解:(1)微变等效电路:
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ui=ibrbe?RE(1??)ib;ib?ui/[rbe?RE(1??)];u01??RC.?ib??RC.?ui/[rbe?RE(1??)](2)Au1=u01/ui??RC.?/[rbe?RE(1??)]??0.97??1
Au2?u02/ui?RE(1??)ib/ui?RE(1??)/[rbe?RE(1??)]?0.99?1(3)当ui?1v时,U01?U0C?1V10.10
解:
(1)UB?RB1/(Rc1?RB2)?VCC?10/(33?10)?24?5.58(V)IE?(UB?0.7)/RE?3.25(mA)IB?IE/(1??)?0.0485(mA)所以:静态工作点:IBQ?48.5?AICQ??IBQ?3.2(mA)UCEQ?VCC?RCICQ?REIEQ?24?3.3?3.2?1.5?3.25?8.69(V)若换上?=100的管子,IBQ变小。ICQ,UCEQ不变,可工作在正常状态
(2)微变电路
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(3)
Au???(RC//RL)/rbe??66?(3.3k//5.1k)/1k??132输入电阻:ri?RB1//RB2//rbe?10K//33K//1K?0.885K?输出电阻:R0?RC?3.3K?(4)开路时:Au=??RC/rbe??66?3.3K/1K??217.8(5)显然ui=ri?us/(RS?ri),即us?(RS?ri).ui/riAus?u0/us?u0/(((RS?ri)/ri).ui)?ri.Au/(RS?ri)??132?0.885/(1?0.885)??62
10-12
解:u0?2v,u?5.1?U0/(3.3?5.1)?1.2(V)
10-13
解:(1)UB?10?12/(20?10)?4VIE?(UB?0.7)/RE?(4?0.7)/2?16.5(mA)IB?IE/(1??)?1.65/(1?40)?0.04(mA)IC??IB?40?0.04?1.6(mA)UCE?VCC?RCIC?REIE?12?2?1.6?2?1.65?5.5(V)
(2)
画出微变电路,见题10.10。
(3)Au???(RL//RC)/rbe??53.3
10-14
(1) 解:UB?10?20/(39?10)?4.1(v)
IE?(UB?0.7)/RE?(4.1?0.7)/0.3(K)?11.3(mA) IB?IE(1??)?0.22(mA)
UCE?VCC?REI4?20?0.3?11.3?16.6V
(2) 微变等效电路
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(3) 输入电阻ri
ri?RB1//RB2//(rbe+(1+?)RL//RE)?39//10//(1?(1?50)?0.3?20/(0.3?20))?39//10//16?5.3(K?)(4)输出电阻:ro?((rbe?Rs//RE)/(1??))//RE?(1?(1//0.3))/(1?50)//0.3?0.024//0.3?0.024K??24(?)
第十一章习题参考答案 作业:11.17 11.18 11.19 11.20 11.17解:
左上方运放构成加法电路:
u01=-((24?9/6)+(24?(?9)/6)=0
右下方运放构成同相比例运算电路,先用结点法计算ub:(6?ub)/6?(ub?(?12))/6?ub/6
得:ub=-2(mV)所以:u02=(1+4/6)?ub??10/3(mV)右侧运放构成减法电路:u0=(6/12)?u02?(6/12)?u01=-5/3(mV)
11.18解;
用结点法由A结点KCL: i1+i2=i3即:由B结点KCL: 即:由虚短性质:得:(ui1?uA)/40?(ui2?uA)/25=(uA-u0)/50....(1) i4+i5=i6(ui3?uB)/10?(ui4?uB)/20=uB/30..........(2) uA=uB................(3)u0=51?ui3/22?51?ui4/44?5?ui1/4?2ui2联立(1)(2)(3)消去uA,uB:11.19解: