6、
解:由于ICQ=2mA,所以UCEQ=VCC-ICQRc=6V。
空载时,输入信号增大到一定幅值,电路首先出现饱和失真。故
Uom?UCEQ?UCES2?3.82V
RL?3k?时,当输入信号增大到一定幅值,电路首先出现截止失真。故
Uom? 7、
'ICQRL2?2.12V
解:(1)静态分析:
Rb1?VCC?2V Rb1?Rb2Rf?ReIEQ?1mAUBQ?IEQ?IBQ?UBQ?UBEQ 动态分析:
UCEQ?10μ A 1???VCC?IEQ(Rc?Rf?Re)?5.7V
rbe?rbb'?(1??)26mV?2.73k?IEQ????(Rc∥RL)??7.7Aurbe?(1??)RfRi?Rb1∥Rb2∥[rbe?(1??)Rf]?3.7k? Ro?Rc?5k?
'RLRf?Re≈-1.92。
(2)Ri增大,Ri≈4.1kΩ;8、
解:(1)求解Q点:
?Au???Au减小,
IBQ?VCC?UBEQRb?(1??)Re?32.3μAIEQ?(1??)IBQ?2.61mA
UCEQ?VCC?IEQRe?7.17V
(2)求解输入电阻和电压放大倍数: RL=∞时
Ri?Rb∥[rbe?(1??)Re]?110k???Au
RL=3kΩ时
(1??)Re?0.996rbe?(1??)Re
Ri?Rb∥[rbe?(1??)(Re∥RL)]?76k??? Au
(1??)(Re∥RL)?0.992rbe?(1??)(Re∥RL)
(3)求解输出电阻:
Ro?Re∥ 9、
解:(1)Q点:
Rs∥Rb?rbe?37?1??
IBQ?VCC?UBEQRb?(1??)Re?31μ AICQ?? IBQ?1.86mA
UCEQ?VCC?IEQ(Rc?Re)?4.56V
?Au、Ri和Ro的分析:
rbe?rbb'?(1??)26mV?952?IEQ Ri?Rb∥rbe?952???? Au (2)设
?(Rc∥RL)rbe??95
Ro?Rc?3k?Us=10mV(有效值),则
Ri?Us?3.2mVRs?Ri?U?304mV Uo?Aui Ui?
若C3开路,则
Ri?Rb∥[rbe?(1??)Re]?51.3k????Rc∥RL??1.5AuReRi?Us?9.6mVRs?Ri?U?14.4mVUo?AuiUi?