当开关S1闭合、S2断开时,10s内R1消耗电能48J,根据Q= U2 R t得:48J= (12V)2 R1 ×10sR1=30Ω;又∵电阻R1的电阻值是R2的电阻值的3倍,∴R2=10Ω;当开关S1断开、S2闭合时,R2与R3串联,电路中的电流为0.1A,则:U2=IR2=0.1A×10Ω=1V,R3= U?U2 I = 12V?1V 0.1A =110Ω故答案为:110.
