I1= P1 U1 = 3W 6V =0.5A,I2= P2 U2 = 4W 4V =1A,所以正常发光的是灯泡L1.R1= U P1 = (6V)2 3W =12Ω,R2= U P2 = (4V)2 4W =4Ω所以电源电压U=IR=I(R1+R2)=0.5A×(12Ω+4Ω)=8V.故选B.
