2.26
当S与A点连接时,设三极管工作在放大区,则
IB=(VCC–UBE)/R1=(12–0.7) V/40 kΩ≈0.283 mA IC=50×0.283 mA=14.2 mA 此时ICRc=14.2 mA×1 kΩ=14.2 V>VCC,不可能出现,三极管工作在饱和区,此时饱和管压降UCES≈0.3 V,则
ICS?(VCC?UCES)/Rc?(12?0.3)V/1k??11.7mA
当S与B点连接时,设三极管工作在放大区,则 IB?(12?0.7)V/100k??0.113mAIC?50?0.113mA=5.65mAUCE?(VCC?ICRc)?(12?5.65?1)V=6.35V,B?故知 UC?6.35VU0.7UVE,?
0V可见 UB?UE,UC?U B说明三极管的发射结正偏,集电结反偏,处于放大工作状态。
当S与C点连接时,UB= –2 V,发射结反偏,三极管工作在截止状态,则
IB?0,IC?0 2.27
(1)图题2.27(a)为饱和失真,(b)为截止失真,(c)为两种失真均有; (2)为消除失真(a)增大Rb,(b)减小Rb,(c)减小输入信号。 2.28
(1) IE?(1??)IB?(1??)VCC/Rb?(1?100)?12V/500k??2.42mA
rbe?300??(1?100)?26mV/2.42mA=1.385k?Au???Rc/rbe??100?3k?/1.385k???216.6??
'?Rc//RL?3k?//2k??1.2k? (2)RL'/rbe??100?1.2k?/1.385k???86.6 Au???RL(3)Ri?Rb//rbe?500k?//1.385k??1.38k? Ro?Rc?3k?
(4)Aus?AuRi/(Rs?Ri)??86.6?1.38k?/(0.5?1.38)k???63.6 2.29
(1)图题解2.29中直线①为直流负载线,读得电源电压 VCC=6 V
(2)在图题解2.29中,由Q点分别向横、纵轴作垂线,得
IB?20?AIC?1mAUCE=3V 而 UBE?0.7V
(3)Rb?VCC/IB?6V/20???300k? Rc?(VCC?UCE)/IC?(6?3)V/1mA=3k?
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??
图题解2.29
(4)图题解2.29中直线②为交流负载线,由图可见信号的负半周易出现截止失真,输出电压负半周在3 V至4.6 V范围内变化不会产生失真,故输出电压的最大不失真幅度为1.6 V,可作图求得基极电流交流分量不失真的最大幅度
Ibm?20?A
2.30
(1)UB?VCCRb2/(Rb1?Rb2)?16V?30k?/(30+60)k??5.33V
IC?IE?(UB?UBE)/Re?(5.33?0.7)V/2k?=2.31mA IB?IC/??2.31mA/50=0.046mA
UCE?VCC?IC?(Rc?Re)?16V?2.31mA?(3+2)k?=4.45V(2) rbe?300??(1?50)?26mV/2.31mA=0.874k?
Au???Rc/rbe??50?3k?/0.874k???171.6 Ri?Rb1//Rb2//rbe?60k?//30k?//0.874k??0.84k?
?Ro?Rc?3k?(3)Au???Rc/[rbe?(1??)Re]
??50?3k?/[0.874k??(1?50)?2k?]??1.46
Ri?Rb1//Rb//[rbe?(1??)Re]
?60k?//30k?//[0.874k??(1?50)?2k?]?16.74k? Ro?Rc?3k?
(4)换上一只??100的管子,其IC和UCE不变,放大电路能正常工作。 2.31
(1)IB?(VCC?UBE)/[Rb?(1??)Re]
?(12?0.7)V/[200k??(1?50)?4k?]?0.028mA
IE?IC?50?0.028mA=1.4mArbe?300??(1?50)?26mV/1.4mA?1.25k???
'??(1??)R/r[e?未接负载时 Aueb
?(?1R)e
]·9·
??(1?50)?4k?/[1.25k??(1?50)?4k?]?0.994 (e接负载时 Au??(1??)R?/R/L)r??(1Re)(RL //b/?e[)] ??51?(4k?//1.5k?)/[1.25k??51?(4k?//1.5k?)]?0.978 (2) Ri?Rb//[rbe?(1?? Ro?Re//[rbe/(?1? )R(e/R/L?)]4?k)] ?200k?//[1.25k??(1?50)?(4k?//1.5k?)]?44k?
//(1.?25k?/ 5?1)242.32
(1)IB?(VCC?UBE)/[Rb?(1??)Re]
?(12?0.7)V/[200k??(1?50)?1k?]?0.045mA
IE?IC?50?0.045mA=2.25mArbe=300??(1?50)?26mV/2.25mA?0.889k?Au1???Rc/[rbe?(1??)Re]??50?3k?/[0.889k??(1?50)?1k?]??2.9Au2?(1??)Re/[rbe?(1??)Re]?(1?50)?1k?/[0.889k??(1?50)?1k?]?0.98??
(2)Ri?Rb//[rbe?(1?50)?Re]
?200k?//[0.889k??(1?50)?1k?]?41.2k?
Ro1?Rc?3k?Ro2?rb/(1e??)?889?/(1?50)?17.4?
(3) ①当测得UCE=16 V时,三极管为截止状态,可能由以下几种原因产生:Rb过大或Rb断路或三极管发射结断路或Re断路等。
② 当测得UCE=0.3 V时,三极管为饱和状态,可能由以下几种原因产生:Rb过小或Rb短路或三极管集电结被击穿短路或外部b、c极之间短路等。
2.33
(1)是共基组态
(2)UB?VCCRb/(Rb?Rc2)?15V?60k?/(60?60)k??7.5V
IE?(UB?UBE)/Re?(7.5?0.7)V/2.9k??2.35mA rbe?300??(1?100)?26mV/2.35mA?1.417k?Au??(Rc1//RL)/rbe?100?(2.1k?//1k?)/1.417k??48.04?
(3)Ri?Re//[rbe/(1??)]?2.9k?//[1.417k?/(1?100)]?14? Ro?Rc1?2.1k? 2.34
(a)耗尽型NMOS管,UGS(off)= –4 V, IDSS=2 mA (b)结型P沟道,UGS(off)=4 V, IDSS=4 mA (c)增强型PMOS管,UGS(th)= –2 V (d)增强型NMOS管,UGS(th)=2 V
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2.35
(a)结型N沟道,UGS(off)= –4 V, IDSS=4 mA
(b)耗尽型NMOS管,UGS(off)= –4 V, IDSS=2 mA (c)增强型PMOS管,UGS(th)= –2 V
(d)耗尽型PMOS管,UGS(off)=2 V, IDSS=2 mA 2.36
'?Rd//RL?3k?//1?103k??2.99k? (1)RL'??1.34mS?2.99k???4 Au??gmRL?(2)Ri?Rg3?(Rg1//Rg2)?510k??(91k?//10k?)?519k? Ro?Rd?3k?
2.37
'?R2//Rd//RL?10?103k?//20k?//10k??6.66k?RL'??5mS?6.66k???33.3Au??gmRL由于Ri?Rs,故Aus?AuRi/(Ri?Rs)?Au 所以
Uo?33.3?20mV=666mV
????
2.38
UGS?VDDRg2/(Rg1?Rg2)?15V?3k?/(12k??3k?)?3VID?IDO(UGS/UGS(th)?1)2?2mA(3V/2V?1)2?0.5mAUDS?VDD?IDRd?15V?0.5mA?10k?=10VAu??gmRd??1mS?10k???10Ri?Rg3?(Rg1//Rg2)?10M??(12k?//3k?)?10M?Ro?Rd?10k??
2.39
有光照时,光电三极管导通,继电器KA的线圈有电流通过,则继电器的触点(图中未画出)动作;无光照时,光电三极管截止,继电器KA的线圈无电流通过,则继电器的触点恢复原来状态,从而实现继电器对相关设备的控制。图中二极管称续流二极管,由于继电器KA的线圈是电感元件,当光电三极管由导通到截止的瞬间,继电器线圈两端将产生较高的自感应电压,极性为下正上负,从而使二极管导通,钳位于0.7 V,对三极管起保护作用。
2.40
当输入为低电平时,三极管T截止,光电耦合器中的发光器件无电流通过不发光,则光电耦合器中的受光器件无输出,相当于触点断开;当输入为高电平时,三极管T饱和导通,光电耦合器的发光器件有电流通过而发光,则光电耦合器的受光器件有输出,相当于触点闭合;因此,光电耦合器构成无触点的动合式开关电路。
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