模拟电子技术基础 23
2?u?解:(1)由转移曲线方程iD?IDSS?1?GS?得
?UP?IDQ?UGSQ???2??IDSS?1???4??1???1mA,
UP???4??UGSQIDQ???2?2kΩ 122由UGSQ??IDQR1得R1??(2)由UDSQ?VDD?IDQ(Rd?R1?R2)得
R2?VDD?UDSQIDQ?(Rd?R1)?20?4?(10?2)?4kΩ 1(3)gm??2IDSS?UGSQ?2?4??2?1?????1???1mA/V ??UP?UP??4??4????AugmRd1?10????1.43
1?gm(R1?R2)1?1?(2?4)
3.7在题3.7图所示的场效应管放大电路中,设Up??3V,IDSS?3mA。VDD?20V,
Rg?1MΩ,Rd?12kΩ,Rs1?Rs2?500Ω。试?和A?;计算(1)静态工作点;(2)Au1u2(3)Ri、Ro1和Ro2。
解:(1)
22??UGSQ??UGSQ??IDQ?IDSS?1???3??1??U?3?解方程得 ??P????UGSQ??IDQ(Rs1?Rs2)??IDQ(500?500)IDQ1?1.15mA,IDQ2?7.86mA(舍去)
UGSQ??IDQ(Rs1?Rs2)??1.15?10?3?(500?500)??1.15V UDSQ?VDD?IDQ(Rd?Rs1?Rs2)?20?1.15?(12?0.5?0.5)?5.05V 2IDSS?UGSQ?2?3??1.15?(2)gm????1??1??????1.24mA/V
UP?UP??3??3????gmRd??1.24?12??9.19 Au11?gmRs11?1.24?0.524 第3章 自测题与习题参考答案
??gmRs1?1.24?0.5?0.38 Au21?gmRs11?1.24?0.5(3)Ri?Rg?1MΩ
Ro1?Rd?12kΩ Ro2?Rs1//11?0.5//?0.31kΩ gm1.24
3.8 在题3.8图所示的场效应管放大电路中,设Up??4V,IDSS?2mA。VDD?15V,
Rg?1MΩ,Rs?8kΩ,RL?1MΩ。试计算(1)?。 静态工作点;(2)Ri和Ro;(3)Au解:(1)
22??UGSQ??UGSQ??IDQ?IDSS?1???2??1??解方程得
U?4???P????UGSQ??IDQRs??IDQ?8题3.8图
IDQ1?0.82mA,IDQ2?0.31mA
UGSQ1??IDQ1Rs??0.82?8??6.56V(舍去) UGSQ2??IDQ2Rs??0.31?8??2.48V UDSQ?VDD?IDQRs?15?0.31?8?12.52V
所以静态工作点为IDQ?0.31mA,UGSQ??2.48V,UDSQ?12.52V。 (2)gm??2IDSS?UGSQ?2?2??2.48???1??1??????0.38mA/V
UP?UP??4??4?Ri?Rg?1MΩ Ro?Rs//??(3)Au11?8//?1.98kΩ gm0.38gmRs0.38?8??0.75
1?gmRs1?0.38?8
3.9如图3.2.3(a)所示的场效应管放大电路中,设VDD?20V,Rg?1MΩ,
Rg1?2MΩ,Rg2?500kΩ,Rs?10kΩ,RL?10kΩ。且UGSQ,??0.2V模拟电子技术基础 25
?、R和R。 (2)Agm?1.2mA?mV。试计算(1)静态值IDQ、UDSQ;iou解:(1)由UGSQ?Rg2Rg1?Rg2VDD?IDQRs得
IDQ?1?1?Rg2500???VDD?UGSQ?????20?0.2??0.42mA
?10?2000?500Rs???Rg1?Rg2?UDSQ?VDD?IDQRs?20?0.42?10?15.8V ?Ugm(Rs//RL)1.2?(10//10)?(2)Au?o???0.86
?1?g(R//R)1?1.2?(10//10)UimsLRi?Rg?Rg1//Rg2?1?2//0.5?1.4MΩ Ro?Rs//11?10//?0.77kΩ gm1.2