例2解答 用叠加原理 直流通道 V1=+12V R TR2DR3u3 V2=-8V [R2 4RsU3 R=4kQ r=4kQ 节点电位法 R=2kQ + 12-8 RR + U 44 =1V — R,R,R,442
例2 解答 1 V 21 41 41 48 4 12 1 1 1 1 2 3 22 11 3 = + +− + = + + + = R R R RV RV U V 1 V 2 R 2R 1 R3 直流通道 U3 u + C - V 1 V 2 R 2R 1 R3 3 u = = = = − = + R k R k R k VV 24 , 4 8 V 12 V 32121 节点电位法 用叠加原理
例2解答 交流通道 C R=R/R/R=lkQ R,∏R3L L=10√2sin1000V U=10∠09V R1=4/2,R2=4k2, R R3=2KQ2 R X =10∠0 5√2∠45°V =U3+3=1+10sim(1000+45°V
例2 解答 u+ C - R 2R 1 R3 3 u R= R 1 //R 2 //R3 =1k u + C - 3 u = = = = = R k X k R k R k u t C 2 , 1 4 , 4 , 10 2 sin 1000 V 31 2 U =10 0 V 5 2 45 V 1 1 10 0 3 = − = − = j R j XR U U C u3 =U3 +u3 =1+10sin(1000 t + 45 ) V 交流通道
例3交、直流共存的电路(续) 2+L4 6 )tC tR,oR123=1+10sm(1000459)V B3=P3直+P3交 R R 12(5√2) =25.5mW 2 思考:如何求电容两端的电压uc?
例3.交、直流共存的电路(续) u + C - V1 V2 R2 R1 R3 3 u 1 10sin(1000 45 )V 3 3 3 = + + = + t u U u 25.5mW 2 (5 2) 2 1 2 2 3 2 3 3 2 3 3 3 3 = + = + = + = R U R U P P 直 P 交 思考:如何求电容两端的电压uC? + - uC