(1)水的质量m=ρV=1g/cm3×600cm3=600g=0.6kg;
(2)水吸收的热量Q=cm△t=4.2×103J/(kg?℃)×0.6kg×80℃=201600J;
(3)消耗的电能W=
=0.06KW?h=216000J;90r 1500r/kW?h
电水壶烧水的实际功率P=
=W t
=1.028kW;0.06kWh
h3.5 60
(4)电水壶加热的效率η=
=Q W
=93%;201600J 216000J
答:(1)电水壶中水的质量是0.6kg;
(2)电水壶中水吸收的热量是201600J;
(3)电水壶烧水的实际功率是1.028kW;
(4)电水壶加热的效率是93%.
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