(1)由欧姆定律得:电源电压U=I1R1=0.30A×10Ω=3V; (2)通过R2的电流I=I2-I1=0.50A-0.30A=0.20A; 由欧姆定律可得:R2= U I = 3V 0.20A =15Ω; (3)由电功公式得:R2两分钟内所做的电功W=UIt=3V×0.20A×120s=72J;答:(1)电源电压为3V;(2)R2的阻值为15Ω;(3)R2在2min内所做的电功为72J.
