ioL R n2 R 节点法: n3 n1=0s C× L RR n2 Un2=0 R R R 3 +joC)Un3 RR ,n2-/0C 4
Un1 Un2 Un3 节点法: Un US = 1 0 1 1 ) 1 1 1 ( 3 3 1 2 2 1 2 3 + + − − = + n n Un R U R U R j L R R n n n S U j CU I R j C U R R + + − − = − 2 1 3 3 3 4 1 ) 1 1 ( S I + _ R1 R2 R3 R4 jL c j 1 − US
例3 已知:I=4∠90A,Z1=Z2=-309 =3092,Z=4592 求: z1z。z解方法一:电源变换 Z,∥21=30(-/30 =15-15 30-j30 s(Z1∥23) Z1/ li i ∥1Z2+Z,+2 J4(15j15) 15-15-130+45 5.657∠450 1.13∠81.90A 5∠-36.9°
. 30 , 45 4 90 A , j30 3 1 2 o S I Z Z I Z Z 求 : 已知: Ω Ω Ω = = = = = − 方法一:电源变换 = − − − = 15 15 30 30 30( 30) // 1 3 j j j Z Z 解 例3. Z2 S I Z1 Z3 Z I 1 3 S (Z // Z )I Z2 Z1 Z3 Z I + - Z Z Z Z I Z Z I + + = 1 3 2 S 1 3 // ( // ) 15 15 30 45 4(15 15) − − + − = j j j j o o 5 - 36.9 5.657 45 = A o = 1.1381.9