(1)I1???U1100?0???52??45?A
R1?jXL1102?45?U1100?0???5?90?A
?jXC120??90????? I2?? ∴I3?I1?I2?5?0?A
(2)由(1)得:R1L1并C1电路可等效呈一个电阻R。且R'?'
U1I3???100?0??20?
5?0? 即虚线框内电路如答66图所示:
则:虚线框内电路的复阻抗Zab?(R3?R')//jXL2?40//j40?20?j20? 即虚线框内电路的功率因数cos??0.707
(3)由(2)得到:该电路总复阻抗Z?Zab?R2?jXC2?40?j40?
又∵Uab?U1?UR3?100?0??I3R3?100?0??100?0??200?0?V ∴总电路I?I3?IXL2?5?0???????????Uab?52??45?A jXL2? U?I?Z?52??45???402??45??400??90?V
(4)当改变XC2时,要使得总电路功率因数cos??1,也即总复阻抗可以等效成一个电阻。
又∵Z?Z1?R2?jXC2?20?j20?R2?jXC2?40?j(20?XC2) ∴XC2?20?时,电路功率因数cos??1 67.(11分)
(1)直流通路如答67(a)图
(2)VB?RB220?VCC??12?4V
RB1?RB220?40VB-UBEQRE1?RE2?4?0.7?1.65mA 2ICQ?IEQ?IBQ?ICQ??1.65?41μA 40UCEQ?VCC?ICQ(RC?RE1?RE2)?12?1.65?4?5.4V
(3)交流通路如答67(b)图
(4)rbe?rbb'?(1??)26mV26?300?41??0.95k? IEQ1.65(5)
ri?RB1//RB2//[rbe?(1??)RE1]?20//40//9.15?5.4k?
ro?RC?2kΩ (6)Au???RC//RL2//2??40???4.4
rbe?(1??)RE19.15 Aus?ri5.4?Au??(?4.4)??3.7
ri?RS5.4?168.(12分)
(1)A1是同相输入比例运算电路 A2是反相输入比例运算电路
uo1?(2)
R1?R2R1?R4ui1?ui1?100mVR3?R4uo2??VB?R6ui2??2ui2??400mVR5
(3)
R12R1211ui3?ui4?ui3?ui4?350mVR11?R12R11?R1222
VA?VB?350mV(4)uo?(1?69.(共9分)
(1)
R10RR)VB?10uo1?10uo2?10VB?6uo1?3uo2?4100mV
R8//R9R8R9
(2)
(3)X=0时,电路为二位二进制(或四进制)减法计数器; X=1时,电路为三进制减法计数器
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