1、电工学习题精选,第 一 章 第 二 章 第 三 章 第 四 章 第 五 章 第 七 章,目 录,第 一 章,11 12 13 14 19 110 111,112 113 114 115 116 117 118,返回,第 二 章,29 210 211 212 213 214 215 216,21 22 23 24 25 26 27 28,217 218 219 220 221 222 223 224,返回,第 三 章,31 32 33 34 35 36 37 38 39,310 311 313 314 315 316 317 318 319,返回,第 四 章,49 410 411 412 413
2、 414 415 416,41 42 43 44 45 46 47 48,417 418 419 420 421 422 423 424 425,返回,第 五 章,51 52 53 54 55 56 57 58 59,510 511 512 513 514 515 516 517 518,返回,第 七 章,71 72 73 74 75,76 78 79 710 711,返回,11 确定元件电压电流的实际方向,计算功率、指出元件时发出功率还是吸收功率。,N2,60V,1.5A,实际方向:如,依照参考方向 PN1U I10V2.5A 25W 发出 PN1U I60V1.5A 90W 吸收,12 计
3、算电流、电压。,+ , +,60V,U,10,20V,+ ,60u200 U40V I40V/104A,+ ,1A,U,2,I,10,4A,I,I4A1A3A U3A(210) 36V,13 试求图中线性电阻两端电压; 各电源及线性电阻的功率,并判断其性质。,(a) 解:,+ ,+ ,3V,u,2,1A,u=3V IR=u / R=3 / 2A=1.5A PR=1.53W=4.5W PIs=13W=3W PUs=(1.51) 3W =1.5W,(b) 解:,u=12V=2V PR=(1)(2)W=2W PUs=13W=3W PIs=(3+2)W=5W,(c) 解:,u1=3V IR=u / R
4、=3 / 2A=1.5A u2=110V=10V,u2,PR1=1.53W=4.5W PR2=(1)(10)W=10W PUs=(1.51) 3W=1.5W PIs=1(3+10)W=13W,14 电压表、电流表都正偏,输出功率的是 ;电压表正偏,电流表反偏,输出功率的是 。,A1,A2,V,A, , ,电压表正偏:所测电压与电压表极性一致; 电流表正偏:所测电流由电流表正极流入负 极流出。,A1,A2,19 计算各支路电流。, , , ,2,2,1,1,1V,3V,2V,I1,I2,I3,I4,I5,I6,I222A1A I331A3A,21I430 I41A 1I42I110 I11A 对
5、a:I5I1I2 I41A 对b:I6I3I4 I15A,a,b,110 计算电路中开路电压。,I1,10V,U2,4,5,4V,2V,I2,I3,2,I2=I3=0,解:,U2= 2V+4V+21V= 4V,111 已知US1=6V,US2=12V,IS=2A; R1=2,R2=1,试计算各电压源及电流 源的功率,并判断其性质。,+ ,US1,IS,R1,+ ,US2,R2,解:,UR1=ISR1= 4V UIs= UR1 +US1 =10V UR2= US2 US1 = 6V I2= UR2 / R2 =6A I1=IS+I2=8A,I2,I1,PUS1=68W=48W PUS2=6 12
6、W=72W PIs=102W=20W,UIS,112 计算R0,R=时的电流I与IE。,IE,7A,6,2A,4,3,I, ,12V,R0,电路被分为两部分 6、3电阻两端电压为12V I12V62A I112V34A IE ( 247)A 1A,I1,R=,I112V34A IE4A2A2A I7A2A4A5A,15A,12A,113 计算I、 US 、R。, ,US,1,6A,12,3,R,I,6A,9A,18A,3A,1239R1510 R73 US 123 1830 US90V,114 计算I1、 I2 、 I3、 I4 。,+,-,3V,6,6,I4,6,+,-,3V,-,+,9V,
7、I2,I3,I1,I6,I5,336 I40 I41A 936I60 I62A 396I50 I51A I1I6I43A I2I4I50A I3I5I63A,115 求图中A点电位及恒流源功率。,I(21)mA1mA UA=I11V,A,1k,6V,1k,1k,1mA,2mA,I,U1,U2,U2121I0 U23V P22(3)mW6mW,6U111UA0 U16V P116mW6mW,3V,116 求图中a、b、c各点电位。,电路中存在两个独立电流,如图,10,a,1A,UC110V 10V,4,10,b,c,2, +,5V,+ ,117 电压表内阻,S断开时,电压表读数12V;S闭合时,
8、电压表读数11.8V,求US、R0。,US,R,R0,-,+,V,S,S断开时,USU开12V,S闭合时,R00.169,10,118 求S闭合和打开情况下的A点电位。,A,+24V,6V,S,10k,10k,10k,10k,2V,I=(24+6)/30mA=1mA UA=2+1016=2V,解:,S打开:,S闭合:,I=6/20mA=0.3mA UA=(2+36)V=5V,I,解:,+ ,10V,6,3A,4,I1,I2,I1I2+3 = 0 4I1+6I210 = 0,联解得 I1=0.8A,I2=2.2A,PR1=40.82W=2.56W PR2=62.22W=29.04W PUs=10
9、 0.8W=8W PIs=3(62.2)W=39.6W,21 用支路电流法求图中各支路电流, 及各电源及线性电阻的功率。,+ ,6V,2,3A,1,1,2,22 用支路电流法求图中各支路电流。,I4,I2,I1,I3,a,b,解:,列KCL方程 a:I1I2I3=0 b:I3ISI4=0,联解得 I1=2.5A,I2=0.5A I3=2A,I4=1A,列KVL方程 :R1I1R2I2US=0 :R2I2+R3I3+R4I4 =0,电压源单独作用时 R0 = 6(4+2) k= 3k U = 12(36) (4 6)V = 4V U = 6V+4V=10V,解:,+ ,12V,6k,3mA,23
10、 用叠加原理求图中电压U。,4k,2k,3k,电流源单独作用时 R0 = (36+2)k= 4k U=3(48) 4 V= 6V,+ ,U,24 用叠加原理求图中电流I。,4,2,3,1,I,电压源单独作用时 I = 35(34)A = 5A I 5A3A8A,电流源单独作用时 I= 73(34)A = 3A,25 当S在1的位置时,I=40mA, S在2的位置时,I=60mA,S在3的位置,求毫安表读数。,+ ,mA,S,1 2 3,US,当S在2的位置时US、10V电压源共同作用, I=60mA,当S在1的位置时US单独作用,I=40mA,所以10V电压源单独作用, I =60mA40mA
11、100mA,按比例关系,15V电压源单独作用, I1100(1510)mA150mA,当S在3的位置时US、5V电压源共同作用, I=150mA40mA190mA,26 用叠加原理求图示电路中的I。,解: 125V单独作用时,120V单独作用时,40,36,60,I,I=I+I=0.75A,27 已知 Uab=10V,去掉E后,Uab=7V,求E=?,R,+,-,E,R,R,R,解: 依叠加原理,Uab=10V是E,IS1,IS2共同作用的结果。 Uab=7V是IS1,IS2共同作用的结果。,a,b,设Uab为E单独作用的电压。,则Uab=10V7V3V,Uab = ER4R=3V E12V,
12、28 将以下各电路化为等效电压源。,5,3A,5,15V,1A,4,2,4A,2,8V,29 将以下各电路化为等效电流源。,-,+,2,8V,2,2A,1,210 用等效变换法求图示电路中的电流I。,2A,10,5,40,10V,+,I,20V,10,5,I=(105)/(5+5+40) A=0.1A,211 用等效变换法求图示电路中的电流I。,3,2,I,4A,2,I(82)/(2+1+3)A1A,10,8,12,5,I,212 求图示电路中的电流I。,与10V恒压源并联的元件可去掉 与1A恒流源串联的元件可去掉,依叠加原理,电压源单独作用时 I = 10(812)A = 0.5A,电流源单
13、独作用时 I = 112(128)A = 0.6A,I 0.6A0.5A1.1A,213 用等效变换法求图示电路中的电流I。,6A,I,8,I = (6+1.5)4(48)A = 2.5A,214 用戴维宁定理求图中电流I。,10,10,10,4,I,解:,令R开路,Uab=20V150V+ 120V =10V,R00,Uab,IUab/(R0+10)1A,+,-,2V,215 用戴维宁定理求图中电流I。,-,+,12V,I,解:,令R开路,a,b,Uab23V+8V +2V 4V,R06/3+3 5,IUab/(R0+5) 4/10A 0.4A,6,3,5,3,2A,Uab,U1,216 用
14、戴维宁定理求图中电流I。,4,8,3,I,3,20,解:,Uab(1689813)V 4V,R0(4+20)/839,168I14I120I20 I1I21 I198A,I1,I2,IUab/(R0+3)1/3A,217 已知U1=12V,U2=18V,R1=2, R2=1,R3=3,求(1)E=10V时,R3中电 流;(2)欲使R3中电流为零,E=?,U1,U2,E,R3,R1,R2,解:,令R3开路,a,i1,i1=(U1U2)/(R1+ R2) =2A,Uab=U2E+I1R2 =(18102)V = 6V,R0=R1R2=0.67,i3=Uab/(R0+R3)=1.63A,当Uab=0
15、时,i3=0 E=18V2V=16V,b,218 用戴维宁定理求图中电流I。,4,2,3,I,解:,令R开路,Uab=(32+ 35)V = 21V,R0(2+3) 5,Uab,I(Uab+10)/R06.2A,219 用戴维宁定理求图示电路中的电流I。,4,2,2,I,5A,2,R02/4/4 1,Uab,Uab=(52)2V = 5V,IUab/ ( R0 +2) 1.67A,220 求图示电路中的电流IX、UX、PX。,3A,1,9A,UX,由KCL推广定律可得 IX9A 电路的戴维宁等效电路 UOC(23+1923)V 7V R0(3+1+2) 6,电路可等效为,UX(769)V47V
16、 PXUXIX947W423W (电源),221 求图中的I。,3,1,I,应用等效变换法,2,4A,4,I = 3 2/(12)A = 2A,3A,2,220 求S闭合和打开情况下的电流I。,I,2A,5,S,S断开, 105I15I50 II1 + 2 得 I1.5A,I1,S闭合, 105I15I0 II1 + 2 得 I2A,223 无源二端网络N0,U11V,I21A,时 U30;U110V,I20A,时U31V;求U10,I210A,时U3?,N0,I2,U3,由叠加原理可知 U3有U1、I2共同作用 设U3K1U1K2 I2 有 0K1K2 110K1 得K10.1,K20.1,
17、U10,I210A,时U310K21V,224 无源二端网络N0,IS1A,求I?,N0,10V,IS,N0,2V,IS,N0,IS,5,I,则其戴维宁等效电路为 U开10V,将N0、IS看作有源二端网络,R0212,I(102+5)A1.43A,31 t0时,S闭合后uC及各电流的初始值及稳态值。,uC(0 ) 1.5 4V 6V,在S闭合的瞬间,根据换路 定律有: uC(0 )= uC(0+ )= 6V i1(0+ ) uC(0+ ) /4 =1.5A i2(0+ ) = uC(0+ ) /2 =3A iC(0+ )(1.51.53)A3A,S,C,i2,iC,uC,i1,1.5A,2,4
18、,uC( ) 1.5 (4/2)V 2V iC( ) 0 i1( ) 2/4A 0.5A , i2( ) 2/2A 1A,32 求开关闭合后的初始值及稳态值。,iL(0 ) =1243A,在S闭合的瞬间,根据换路定律有: iL(0+)iL(0) = 3A,4 i1(0+) + uL(0+) =12 uL(0+)= 4.8V,+,S,i2,uL,解:,i1,4,6,iL,12V,i1 (0+) = 3 6/(46)A = 1.8A,i2 (0+) = 3 4/(46)A = 1.2A,iL( ) 12(4/6)A 5A uL( ) 0 i1( ) 12/4A 3A i2( ) 12/6A 2A,
19、33 电路中,已知R1=5k, R2=10k, C=4F,US= 20V, t0,打开S,求uC(t) 、iC(t) 、并画出变化曲线 。,S,uC,R2,R1,US,iC,C,+ ,电路为零输入响应,解:,uC(0+)=uC(0) =USR2/( R1 +R2) =2010/15V=13.3V,= R2 C=4102s,uC() =0,iC() =0,uC(t) =13.3e25t V,iC(t) =1.33e25t mA,uC(t),t,iC(t),-1.33mA,13.3V,O,S,C,uC,i,1mA,10k,34 S打开0.2s后,uC8V,试求C、 i(0+ )、 uC(t)。,解
20、:,uC(0+)=uC(0)=0,= 10103 C,电路为零状态响应,uC() =201010V,uC(t) =10(1et/10000C )V,t0.2,uC= 8V uC(t) =10(1e1/50000C )8V e1/50000C0.2, C12.5F,S闭合的瞬间,C相当于短路 i(0+ )0,uC(t) =10(1e8t )V,35 电路中,已知R1=3, R2=10, R3=6,C=10F,US= 100V, t0,闭合S, 求i1(t) 、i2(t) 、i3 (t) 。,S,i3,R2,R3,R1,US,解:,uC(0+)=uC(0)=0,= (R1/R3+R2) C =12
21、105s,i2,i1,C,+ ,电路为零状态响应,i1() =i3() =US /(R1+R3)=11.1A,i2() =0,i3(t) =11.1A1.85e8333t A,i1(t) =11.1A+3.7e8333t A,i2(t) = 5.55e8333t A,C,uC,IS,36 已知R1=6k, R2=2k,C=20F, IS= 4mA,US= 12V, t0,闭合S ,试求uC(t)。,解:,uC(0+)=uC(0) =ISR2= 8V,= (R1/R2) C = 3102s,9V,uC(t) =9Ve33.3t V,R2,S,US,+ ,R1,37 电路中,已知R1=4, R2=
22、20, R3=6, C=4F,US= 50V, t0,闭合S,求uC(t) 、i(t) 、并画出变化曲线 。,S,R2,R3,R1,US,i,C,+ ,uC,解:,= (R1/R3+R2) C =89.6106s,uC(0+)=uC(0)=50V,uC() =USR3 /(R1+R3) =30V,t,uC(V)、i(A),i(0+)=(US /R1)(R3/R1)uC(0+)/(R2+R3/R1) =0.896A,i() =0,O,38 图示电路中U=20V,R=50k,C=4F, 在t0时闭合S1,在t0.1s时闭合S2,试求S2闭合后的uC(t),并画出曲线,设S1闭合前uC=0。,U,S
23、1,S2,C,UC(t),R,R,解: S1闭合后:,uC(0+)=uC(0-)=0 uC()= U = 20V 1= RC = 0.2s,uC(t)=uC()+uC(0+)uC()et/ =20(1e5t)V,当t0.1s时 uC(0.1)=20(1e5t)V 7.87V,2= (R/R) C =2.51044106 s= 0.1s uC(t)=uC()+uC (0+) uC()et/ = 20V12.13e10(t0.1)V,U,S1,S2,C,UC(t),R,R,S2闭合后: uC(0+)=7.87V uC()=U=20V,变化曲线如图,uC(t),20V,7.87V,O,0.1s,t,
24、1=0.2s,2=0.1s,39 电路中,已知R1=R2=4k, R3=2k, C=100F,E1= 10V, E2= 5V,t=0,S由a打向b,求uC(t) 、i0(t) 。,解:,uC(0+)=uC(0) = E1R2 /(R1+R2) = 5V,= (R1/R2+R3) C =4101s,S,R3,R2,R1,E2,i0,C,E1,uC()= E2R2/(R1+R2) = 2.5V,=1.56mA,i0()= E2/(R1+R2) = 0.625mA,a,b,S,C,uC,i2,2A,3,310 C 0.5F,试求i1 (t )、 i2(t)。,解:,uC(0+)=uC(0) =23V
25、6V,= (6/3) C1s,电路为零输入响应,6,i1,i1 (0+) = 6/6A = 1A,i2 (0+) = 6/3A = 2A,i2() =0,i1() =0,311 电路中,已知R1=6, R2=4, L=10mH,US= 10V, t =0,闭合S,求uL(t) 、iL(t) 。,US,L,R1,R2,iL,S,uL,解:,= L/R2 = 2.5103s,iL(0+)= iL(0) =US/(R1+R2)=1A,uL(0+) = -R2 iL(0+) = -4V,iL() =0,uL() =0,312 电路中,已知R1=3k, R2=6k, C1=40F, C2=C320F,U
26、S= 12V, t =0,闭合S,求uC(t) ,画出曲线。,S,R2,R1,US,解:,uC(0+)=uC(0)=0,= (R1/R2) C =4102s,C1,+ ,电路为零状态响应,C2,C3,uC,C = C2/C3+C1,uC()= USR2/(R1+R2) = 8V,uC(t)= 8V8e25tV,t,uC(t),8V,O,IS,313 已知R1=2, R2=R3=3, R4=6, L=10mH, IS= 1mA, US=8V, t=0,断开S ,试求uL(t)、 i(t) 。,解:,R2,S,US,+ ,R1,R3,R4,i,uL,= 0.001/(6+6/2) s= 1.331
27、03s,314 已知R1=200, R2=400, C1=0.1F, C20.05F,U= 25V, t0,断开S,求uC1(t) 、 uC2(t) 、 i(t) 。,S,R1,R2,U,解:,uC1(0+)=uC1(0) =25400/(200+400)V =50/3V uC2(0+)=uC2(0) =25200/(200+400)V =25/3V,1= R1 C1=2105s 2= R2 C2=2105s,C1,+ ,C2,uC2,uC2,uC1()= uC2()= 25V,uC1(t)= 25V8.3e50000tV uC2(t)= 25V16.7e50000tV,315 已知,U=90
28、V,R=60 ,r=30, C=10F,在t=0时闭合S,试求uC(t) ,经过0.4ms后又打开S,试求uC(t)。,U,S,R,R,r,r,C,解:S闭合前:,uC(0+)=uC(0)=UR/(R+r) =60V,=60V30V=30V,U,S,R,R,r,r,C,uC(t)=uC()+uC(0+)-uC()et/ = 30 V+ 30e2500tV,当t1 =0.4ms 时 uC(t1)= 30V+30e2500t1V 41V,uC()=UR/(R+r) =60V,uC(t)= 60 +(4160)e(tt1)/ = 60V19e2000(tt1)V,S,10k,6V,1000pF,+
29、,20k,u0,316 t =0,闭合S ,试求uC(t)、 u0(t)。,解:,uC(0+)=uC(0)=0 u0(0+)=6V,电路为零状态响应,uC()=610/(10+20)V=2V u0()=620/(10+20)V=4V,uC(t)= 2V2e150000t V u0(t)= 4V+2e150000t V,317 t = 0,闭合S,求iL,画出曲线。,12V,1H,3,iL,解: iL(0+)= iL(0) =12/(3+3)A=2A 依等效变换 i(0+)=(33/62)612/(3+6) =1A =1/3+(63)s =0.2s,33V,S,a,b,iL(t)=3.8A1.8
30、e5tA, i(t)=0.2A1.2e5tA,6,3,2,1,O,318 图示电路在开关S闭合前电路已处于稳态,在t0时刻开关闭合。试求开关闭合后的uC(t)及iL(t)。,+,S,100,3k,3k,1.5k,1F,90V,1H,S,uC,i,2mA,3k,319 试求uC (t )、 i(t)。,解:,uC(0+)=uC(0) =23V6V,1k,1F,1k,+,6k,12V,=1+(63)1103s =3103s,uC(t)= 8V2e333t V i(t)= 0.67mA0.22e333t mA,41 已知 i = 5.6sin(314t37 )A, u = 311sin314tV。,
31、解:,Um=311V, Im=5.6A,u = i = 314 rad/s fu = fi = /2 = 50Hz Tu = Ti = 1 / f = 0.02s u=0 i=37 ,(2), = u i = 37 u 超前 i 37 ,t,O,(3),(4),42 已知 u1 = 100sin(t+ / 6)V, u2 = 60sin (t+) V, 试求u=u1+u2 在U为 最大和最小时, =?Um=?,解:,当 = / 6时,Um最大, Um= (100+60)V =160V,当 = - 5 / 6时,Um最小 , Um= (10060)V = 40V,30,30,43 已知电路中某元
32、件u和i,试问是什么元件、元件的参数、储能的最大值、平均功率。,(1) u = 100sin(314t)V i = 10cos (314t) A,= 100sin(314t+180)V,= 10sin(314t90)A,u超前i 90,元件为电感 XL1001010 Q100102var500var P0,(2) u = 282sin(314t+60)V i=56.6cos(314t30)A,= 56.6sin(314t60)A,u、i 同相,元件为电阻 R28256.65 Q0 P28256.62W7980.6W,(3) u = 70.7cos(314t30)V i = 5sin (314t
33、30)A,= 70.7sin(314t+60)V,= 5sin(314t150)A,U滞后i 90,元件为电容 XC70.7514.14 Q70.752var176.75var P0,解:,XL= 2f L=8 Z=(6+j8)=1053.13 I=U/ z = 22A,44 将电感L25.5mH, R=6的线圈接到 f = 50Hz,U=220V的电源上,求XL、Z、 ,画相量图 。,53.13 ,设,C,u1,u2,R,45 R=100,u1的 f = 500Hz,要求输出信号u2比输入信号u1超前60,求C?,XC=|Rtan | =173.2 C12f XC=1.84F,的初相角为0,
34、的初相角为60,设 为参考正弦量,46 已知 i = 5.6sin(314t17 )A, u = 314sin(314t+20 ) V, 试求串联等效电路。,i,+ ,u,N,解:,串联等效电路 R=zcos37 =44.7 X= zsin37 =33.7,R=70.2 X=93.2 ,并联等效电路,1,Z,2,Z,3,Z,47 已知İS20, Z1=j5 ,Z2=(2+j),Z3=(3+j4), 求各个电流及各个电压。,按分流公式:,R1,XL,XC,İ,İ1,İ2,45,作相量图:,İ1=1090A,İ= İ1+İ2100A,Uab= USU150V,a,b,48 图中,= 314rad/
35、s, US=100V,R1 =5 ,I1 =10A,I210 A,RL=XL ,求I、RL、L、C 。,RL,İ2=10 45A, RL=XL,zL=Uab/I2=3.5, RL= XL=2.5 L=2.5/314 = 7.96mH C=1/5314=0.637mF,设 为参考正弦量,49 电路如图,标出各表读数。,L,C,3A,5A,i1 、i2 反相 I0I1I25A3A2A,R,C,10V,10V,L,C,10A,R,100V,5,5,10,İ1=1090A,İR=10 45A,İ0 = İ1+İR= 100A,设 为参考正弦量,R,L,C,410 电路如图, RXL5,XC10 ,V1
36、读数为10V,求各表读数。,I =V1/R= 2A V2IXL10V V3IXC20V V4V3V210V,411 已知U=220V, U1=120V, U2=130V,f = 50Hz, R1=50,求RL和L。,L,U,U2,R1,U1,RL,解:,I = U1/R1 = 2.4A z = U/I = 220/2.4 =91.67,I,由已知可列方程组:,z2=(R1+RL)2+XL2,解得: RL=29.69 XL=45.3 L = XL/2f = 0.144H,1,Z,Z,2,Z,412 已知 120, Z =( +j) , Z1=(3+j4) ,Z2=(44j), 求各个电流及各个电
37、压。,R1,L,u,i,C,i2,i1,R2,解:,Z1=jXL+R1=(j4+3) =553.13 Z2= R2 jXC(8j6) =10 36.86,XC=6,XL=4,İ = İ1+İ2= (44j22)A = 49.226.56A,cos = cos26.56= 0.9,P = UIcos = 9741.6W Q =UIsin = 4840.6var S = UI = 10824VA,414 已知U=220V,I=4A,P160W,f50Hz,试求R、L。,R,L,u,A,0.18, =79.5,UR= Ucos = 40V RPI210,XL=Rtan=54 LXL2f =0.172
38、H,1,Z,R,2,Z,R,XL,XC,İ,45,作相量图:,UL=U=220V,设 为参考正弦量,i,L,R,Z2,u,S,417 XL和R串联支路的P1=726W,cos1=0.6, U=220V, 当S闭合后,电路的有功功率增加了74W,无功功率减少了160var,试求I、Z2。,P274 W,Q2160var,0.42,因为Q减少,2=65.2,Z227565.2,PP1P2800W, QP1tanQ2808var,R1,L,u,i,R,R2,i2,i1,设İ= 100A,按分流公式:,5,8,2,4,= 453.13A,= 8.2522.83A,= 81.429V,PUIcos9=8
39、1.42100.988W=804.2W,419 某工厂变电所向一车间供电,若车间负载的 R2=10, X210.2,配电线的 R1=0.5, X21, 为保证U2220V,求U、U1、P2、P1。,L2,u,u2,R1,u1,R2,解:,I = U2z2 = 15.4A U115.41.12V 17.26V U15.415.35V236.5V,L1,Z1=(0.5+j) =1.1263.43 Z2=(10+j10.2)=14.28 45.57 Z= (10.5+j11.2)=15.35 46.8,P222015.4cos45.57 W=2373.23W P117.2615.4cos63.43 W=119W,R1,L,u,C,i2,i1,R2,420 电路如图, R1= 5 , R2= 3, XL2 ,XC3,V读数为45V,求A表读数。,A,V,I2 = UR2 = 15A,设İ= 150A,İ =
