∵I= U R ,∴小灯泡的阻值:R= U I = 6V 0.6A =10Ω,电源电压:U′=I(R+ 1 2 R′)=0.6A×(10Ω+ 1 2 ×20Ω)=12V;则当滑片P在右端时,电流表的示数:I′= U′ R+R′ = 12V 10Ω+20Ω =0.4A.答:P在右端时电流表示数为0.4A.
