10 1162例3求电压UO1十十10VU4A42-1福(1)10V电压源单独作用:U=-10I+U,10 116210OI=1A稻+6+4十十U,10VU424U,'=104V福6+4.1U.=-10I1+U=-10×1+4=-6V
例3 求电压Us 。 (1) 10V电压源单独作用: + – 10V 6 I1 4A + – Us + – 10 I1 4 10V + – 6 I1 ' + – 10 I1 ' 4 + – Us ' + – U1 ' Us ' = -10 I1 '+U1 ' 1A 6 4 10 1 = + I = Us ΄= -10 I1 ΄+U1 ΄= -10×1+4 = -6V 4V 6 4 4 ' 10 1 = + U =
11(2)4A电流源单独作用:1I"10 1V62U"=-101"+U,+14U,I"X4=-1.6A4A424+6福U" =(-1.6 + 4)×4=9.6V一一U."=-10I"+U"=-10x(-1.6)+9.6-25.6V福由叠加定理可得U=U+U"=-6+25.6=19.6V1111-111
Us " = -10I1 "+U1 " = -10 (-1.6)+9.6=25.6V 由叠加定理可得: Us= Us ' +Us " = -6+25.6=19.6V 4 1.6A 4 6 4 1 = − + I = − U1 = (−1.6 + 4) 4 = 9.6V 6 I1 '' 4A + – Us '' + – 10 I1 '' 4 + – U1 " (2) 4A电流源单独作用: Us " = -10I1 "+U1