- 一道物理(电)1请分析并解答,谢谢~~
- 请并解答,谢谢~~
- ∵R1、R2、R3并联 ==> U=I1R1=I2R2=I3R3 ==>I1:I2=R2:R1, I2:I3=R3:R2
∵I2=1A ==>I1=R2:R1(A), I3=R2:R3(A)
∵R1=4Ω ==>I1=U/R1=U/4
∵P3=12W ==>U×I3=12W ==>I3=12/U
∵I=4.5A ==>I1+I2+I3=4.5 ==>U/4+1+12/U=4.5 ==>U=6V or U=8V
当U=6V时
I1=1.5A (由I1:I2=R2:R1) ==>R2=6Ω
根据P=U^2/R ==>R3=3Ω
当U=8V时
I1=2A ==>R2=8Ω
根据P=U^2/R ==>R3=16/3Ω
(注:因为P=U×I,所以I3=P3/U,再根据I2:I3=R3:R2,可以算出R3,可用来做题目的验证)