每章只给出计算题的答案
第一章
1-1 U1 ?50V, U2 ??25V, U3 ??20V 1-2 D
1-3(a)Uab=6V, P=6×2= 12W 消耗
(b)Uab= -8V,P=1×(-8)= -8W 提供 (c)Uab= -8V, P= -(-2)?(-8)= -16W 提供 (d)Uab=6V, P= -(-1)?(-6)= -6W 提供
1-4 (a)PUS?10?3?30W,吸收; PIS??10?3??30W, 发出。
(b)电流源发出30W,电阻总吸收,电压源可能吸收或发出。 1-5 R2=1.33?,R1=10?,US=11V 1-6 u?6V 1-7 i?6A
第二章
2-1 (a)3.73kΩ (b)12.67Ω 2-2 R1?20? Us?12V 2-3 Rab?15Ω,Rcd?12Ω 2-4
a Is1 -Is2 b
(a)
2-5 1.5R1 2-6 0.75us
第三章
3-1 树支数均为5 3-2 略 3-3 均为3个
3-4 i1??0.5A,i2??2A,i3?1.5A
3? + 14V a 1? + 15V a - - (b) b b (c)
3-5 R6i6?R5i5?R4i4??uS6
R4i4?R2i2?R1i1??uS2?uS1 R5i5?R3i3?R2i2?uS2
3-6 i?Im3??2(A),u?10(V)
_ 6V 1Ω 3-7 可能的一种如下图所示 +
3
+ 2Ω 3Ω
1V 2Ω
_ 1 1Ω 2
题解3-7
3-8 il1=10A, il2=0, il3=-7.5A, uS=12.5V
3-10 (
1R+1)u1n1-un2=iS-ix 1R2R21 -
Ru11n1+(R+)un2=?i2+ix 22R3un2-un1=ri1 i1= -
un1R 1iu2=
n1?un2R 23-11 ux?0.4(V)
习题册 第四章、六章计算题答案
4-1 (a)u?u'?u''??3?26?23V(
(b)Ix?I'x?I''x?2?1.5?0.5A 4-2 I??165A 4-3 a a
a
32A
? 2? 3?
+ + 6V 22V - b
-
b
b
(a)戴等
(a)诺等
(b)戴等
a 11A 2? b (b)诺等
4-4 当R?1?时,有i?0.5A;
当R?2?时,有i?0.4A; 当R?5?时,有i?0.25A
4-5 _ 1V
+ 1/8A 8Ω 8Ω
24-6 当R=6Ω 时可获最大功率, Pmax???12??6?6???6?6W 第六章答案
??0.4?a?A, 0?t?a6-1 i???0, a?t?2a ?0.4
??A, 2a?t?3a?a?0, 其他??0, t?0?t2?2a2A, 0?t?a 6-2 i???22??1??at?t2a2, ?1A, 2a?t
第七、十四章计算题答案
7-1(a)uC?0???uC?0???2V i?0????2.5A iC?0????4.5A (b) iL?0???iL?0???2A i?0???1A uL?0???6V 7-2 uC?0???uC?0???4V iL?0???iL?0???0 110007-3 uC?uC(0?)e?t???60?3t13e?4.615e?3666.67tV
a?t?2a
u12?i?C?e5137-4 iL?iL(0?)e7-5 iL?iL(0?)e?11000t3?0.923e?3666.67tA
t?t?1.2e?50tA , uL??5iL??6e?50tV 5?103t?103t?e?0.227eA 22t??LuC?uC(0?)e??C250?103t?103t?e?22.7eV 11uC2.5?103t?103tiC??e?0.227eA
10011i?iC?iL?0.227e?10t?0.227e?10t?0
7-6 UOC?3385V, Req?? 33?tReq iC
+ 20μF - ?uC?uC(?)??1?e?iC?C??84??1?e?3?10tV ?3???+ UOC - uC
44duC8?20?10?6??3?104e?3?10t?1.6e?3?10tA dt3题解7-6图
i1?4??1?iC?uC??28?3?104t?-3?104A ???e?A?0.667?0.533e2315???t7-7 uC?uC?????uC?0???uC????e??20?8e??106t?V
?pIS?uCIS?W ??40?16e?106t7-8 uC?t??uC?????uC?0???uC????e?t???72?60e?tV
t?7-9 uC?t??uC?????uC?0???uC????e???10?15e?50tV
?50t??uC?t?的稳态分量为?10V。uC?t?的暂态分量为15euC?t?的零状态响应为?101?eV。uC?t?的零输入响应为5e?50tV。
??50t?V。
7-10 (1)当uC?0???0时,零状态响应uC为
t???uC?uC?????1?e???ε?t? ?201?e?1.5tε?t?V ?3???(2)当uC?0???5V时,uC为全响应。现只需求出零输入响应uC?即可
uC?uC?0??e?ε?t??5e?1.5tV
则全响应uC为 uC???t20?205?1?e?1.5t?5e?1.5t???e?1.5t?V,t?0? 3?33???7-11 ??L11??s,uS?t??3?ε?t??ε?t?1?? ??3ε?t??3ε?t?1??V Req362??ε?t??11?e?2tε?t? ?3?t????t??ε?t?V单独作用时,其响应为siL?t??iL????1?e?当uS????所以,在us作用时,响应iL?1?e
???2t?ε?t??[1?e?2?t?1?]ε?t?1?V
?10-2 s141-4(s?1)e?2e- s(2) 2??2e sss?1s1?2 t1?2 t?3t e?2 t?t2e?2 t?e? t,?0.447e? tcos?2t?63.435?? 14-2 (1)e(2)?e2514-1 (1)14-3 i?t?????1?t?e?2e?3 tcos?t?81.87??? ε(t) A ?5? uC?t??[2e?t?25e?3 tcos(t?116.565?)] ε(t)V
5s2?6s2s2?114-4 (1) (2)2 23s?7s?6?s?1???s2?414-5 I1?s??
2?s?2?s2?2s?4??I2?s???1
s2?2s?414-7 u?t????10?0.5t4?2t?e?e?V
3?3?-0.5 t14-9 i(t)??5e??5?5t?ε?t? A
30s2?14s?114-11 Z(s)?,
6s2?12s?1