(1)两灯并联在6V电源两端,实际电压等于额定电压,所以实际功率等于额定功率,所以灯泡L1较亮;(2)通过两灯的电流分别为I1= P1 U = 6W 6V =1A;I2= P2 U = 3W 6V =0.5A所以干路电流为I=I1+I2=1A+0.5A=1.5A故答案为:L1;1.5.
