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æ ¹æ®åå¾ï¼ç±KCLï¼i1=i2+i3ï¼
æ ¹æ®KVLï¼å·¦è¾¹åè·¯ï¼4i1+6+2i3=8ï¼
å³è¾¹åè·¯ï¼ï¼3+3ï¼Ãi2=6+2i3ã
解æ¹ç¨ç»ï¼i1=7/11ï¼i2=10/11ï¼i3=-3/11ã
å å å®çï¼
1ã8Vçµåæºåç¬ä½ç¨æ¶ï¼6Vçµåæºçè·¯ï¼ä¸å¾ï¼
i1=8/ï¼4+2â¥ï¼3+3ï¼ï¼=8/ï¼4+3/2ï¼=16/11ï¼Aï¼ã
U=i1Ã2â¥ï¼3+3ï¼=ï¼16/11ï¼Ã3/2=24/11ï¼Vï¼ã
æ以ï¼i2'=U/ï¼3+3ï¼=ï¼24/11ï¼/6=4/11ï¼Aï¼ã
2ã6Vçµåæºåç¬ä½ç¨æ¶ï¼8Vçµåæºçè·¯ï¼ä¸å¾ï¼
i3=-6/[2+4â¥ï¼3+3ï¼]=-6/ï¼2+12/5ï¼=-15/11ï¼Aï¼ã
æ以ï¼U=-i3Ã4â¥ï¼3+3ï¼=-ï¼-15/11ï¼Ãï¼12/5ï¼=36/11ï¼Vï¼æè U=6+2i3=6-2Ã15/11=36/11ï¼Vï¼ã
i2"=U/ï¼3+3ï¼=ï¼36/11ï¼/6=6/11ï¼Aï¼ã
3ãå å ï¼i2=i2'+i2"=4/11+6/11=10/11ï¼Aï¼ã
电压关系:(1)小回路:8=6+2i3+4i1
(2)大回路:8=3i2+3i2+4i1
三个式子解得:
i1=7/11
i2=10/11
i3=-3/11追问
我有个疑问就是,左边的4欧电阻的电流是咋判断的