1.拓扑约束与元件约束2.103.4.-5.不为06.磁场7.8.临界阻尼9.5H10.4V11.50°(或-70°)三.解:断开RL求左侧单口网络戴维宁等效电路,1.求UOC:∵I=0∴4I=0?UOC=24+8=16V2.求RO:先求短路电流IscI=Isc,I1=4-I=4-Isc4Isc=2(4-Isc)+8?Isc=ARo==6ΩRL=RO=6Ω获最大功率 W四.解:(1)Uab =-10V(2)Iab={五.解:(3+2+4)I1-4I2=17 (3+4)I2-4I1=-18 解得:I1=1AI2=-2A 六.解:t<0,uC(0-)=-2Vt>0,uC(0+)=uC(0-)=-2VuC(∞)=10–2=8Vτ=(1+1)0.25=0.5S(0-)等效电路∴uC(t)=uC(∞)+[uC(0+)-uC(∞)]=8-10Vt≥0 (∞)等效电路七.解:6A单独作用时:1′=2′=6A,3′=0uS单独作用时,画出相量模型?,可得: ∴1″(t)=02″(t)=4cos(t-45°)A3″(t)=-4cos(t-45°)=4cos(t+135°)A?叠加:1(t)=1′+1″=6A?2(t)=2′+2″=6+4cos(t-45°)A 3(t)=3′+3″=4cos(t+135°)A 电路分析(Ⅲ)参考答案一.单项选择题1.C2.A3.C4.D5.A6.D7.B8.A9.C10.B11.D12.B13.A14.D15.C16.?A二.填空1.电荷2.03.b–(n-1)4.平面5.96.7.50∠-45°V8.10cos(100πt+30°)A9.电感10.011.350W?三.解:-12=(120+60)I-30I==0.1AU表=80I–30=-22V电压表极性为下“+”、上“-”Ua=-22+60I=-16V四.解: 五.解:电流源单独作用, =10A===1A
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