如图所示电路中R1=R2=R3=R4=3Ω,R=1Ω,电源电压为12V,则电路总电阻为???
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Solution: R2, R3, R4 after the parallel connection of resistance R123 = 3 Omega 3 = 1 omega,
R = R1+R123+R = 3 Omega + 1 Omega + 1 omega = 5 ohm,
下面是其他几小题
I = UR = 12V5 omega = 2.4A,
R2, R3, R4 and R1 parallel and series voltage:
U = I (R1+R123) = 2.4A x (omega 3 Omega + 1) = 9.6V,
R2, R3, R4 parallel, R2 = R3 = R4,
R2, R3 parallel current
I = 23I = 23 x 2.4A = 1.6A.
R = R1+R123+R = 3 Omega + 1 Omega + 1 omega = 5 ohm,
下面是其他几小题
I = UR = 12V5 omega = 2.4A,
R2, R3, R4 and R1 parallel and series voltage:
U = I (R1+R123) = 2.4A x (omega 3 Omega + 1) = 9.6V,
R2, R3, R4 parallel, R2 = R3 = R4,
R2, R3 parallel current
I = 23I = 23 x 2.4A = 1.6A.
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解:假设总电阻为E X为R1,R2,R3,R4组合以后总电阻
E=R+X
由于此图连接方式电压表相当于断路,而电流表为短路
分析为,R2,R3,R4并联 再与R1串联
电阻X=3+1/(1/3+1/3+1/3)=4 Ω
E=3+4=7Ω
E=R+X
由于此图连接方式电压表相当于断路,而电流表为短路
分析为,R2,R3,R4并联 再与R1串联
电阻X=3+1/(1/3+1/3+1/3)=4 Ω
E=3+4=7Ω
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5欧姆
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