(1)U单独作用 rin r2 AB US-RIN UnU,=0.4U0-R, 0.4U4B 1=-l B 代入数据得: 解得 U=20-21 AB UA′=125V AB 0.4 AB 2 -n=3.75A
1 2 2 2 1 1 0.4 I I U ' U ' R I ' U ' U R I ' AB AB AB S = − = − = − 解得 3.75 A 12.5V 1 = − 2 = = I ' I ' U ' AB 代入数据得: I ' I ' U ' U ' I ' U ' I ' A B A B A B 1 2 2 1 0.4 2 20 2 = − = − = − Us (1) Us 单独作用 + + - - R1 R2 A B UD= 0.4UAB I1 ' I2
节点电位法: (2)l单独作用 2 A RR R R R 1104V tOI 0.4UA8"1+ +2 22 2 B 丿"=2.5V=U A B "-2.5 1.25A R 2 0.4Un- AB 0.4×2.5-2.5 2 =-0.75A R 2
节点电位法: V " U " V V " I R U R R V " A AB A A S D A = = + = + + = + 2.5 V 2 2 0.4 2 1 2 1 1 1 1 2 2 0.75A 2 0.4 0.4 2.5 2.5 1.25A 2 2.5 2 2 1 1 = − − = − = = − − = − = R U V I " R V I " A B A A (2) Is 单独作用 + - R1 R2 A B UD = 0.4UAB I1 '' I2 '' Is