10A表示:允许通过电能表的最大电流是10A.电路中消耗电能W1= 3 3000 KW?h=0.001kW?h=3.6×103J,t1=5min=5×60s=300s,用电器的电功率P= W1 t1 = 3.6×103J 300s =12W,W2=P2t2=0.012kW×20h×30=7.2kW?h故答案为:允许通过电能表的最大电流是10A;12;7.2kW?h.
