如图已知E1=12V,E2=9V,E3=6V,R1=2欧,R2=3欧,R3=2欧,R 4=6欧。求各支路电流。
正确答案:
U.AB=∑(E/R)/ ∑(1/R)
= (E1/R1+ E2/R2- E3/R3)/ (1/R1+1/R2+1/R3+1/R4) =(12/2+ 9/3- 6/2)/ (1/2+1/3+1/2+1/6) =(6+3-3)/(3/2) =4v
根据欧姆定律:
I.1=(E1- UAB)/R1=12-4/2=4A I2=(E2- UAB)/R2=9-4/3=5/3A I3=(-E3- UAB)/R2=-6-4/2=-5A I4=UAB/R4=4/6=2/3A
= (E1/R1+ E2/R2- E3/R3)/ (1/R1+1/R2+1/R3+1/R4) =(12/2+ 9/3- 6/2)/ (1/2+1/3+1/2+1/6) =(6+3-3)/(3/2) =4v
根据欧姆定律:
I.1=(E1- UAB)/R1=12-4/2=4A I2=(E2- UAB)/R2=9-4/3=5/3A I3=(-E3- UAB)/R2=-6-4/2=-5A I4=UAB/R4=4/6=2/3A
答案解析:有
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