设电流源左端为点a,右端为点b,左侧3Ω电阻下端为点c。
断开4Ω电阻;
电流源变换为24v电压源,左负右正,与6Ω电阻串联;
等效电压 Ubc = Uba + Uac
= [ 24 - ( 24 + 6 )/( 6 + 5 + 1 ) * 6 ] + [ 10 * 3/( 3 + 2 ) ]
= 9 + 6
= 15 v;
等效电阻 Rbc = Rba + Rac
= 6//( 5 + 1 ) + 2//3
= 3 + 6/5
= 21/5 Ω;
接入4Ω电阻;
4Ω电流 I = ( Ubc + 8 )/( Rbc + 4 )
= ( 15 + 8 )/( 21/5 + 4 )
= 115/41 A 。
