解:(1)当开关S 1 、S 3 闭合,S 2 断开时,电阻R和电灯L组成并联电路,根据题意可得:U=U L =U R =6V,又 ,则I R =I﹣I L =2.5A﹣0.5A=2A,所以: Ω;(2)当开关S 1 、S 3 断开,S 2 闭合时,R和L组成串联电路,又U=6V, =12Ω,所以: ,则:W L =I′ 2 R L t=(0.4A) 2 ×12Ω×50s=96J.
