题目内容
质量是150g、温度为20℃的水吸收1.89×104J的热量后,温度升高多少?若继续加热,使水的温度升高到80℃,则水又吸收了多少热量?
(1)由Q=Cm△t得
△t=
=
=30℃
答:水的温度升高30℃
(2)Q=Cm(t-t0)=4.2×103J/(kg?℃)×0.15kg×(80℃-30℃-20℃)=1.89×104J
答:水又吸收了1.89×104J热量.
△t=
| Q |
| Cm |
| 1.89×104J |
| 4.2×103J/(kg?℃)×0.15kg |
答:水的温度升高30℃
(2)Q=Cm(t-t0)=4.2×103J/(kg?℃)×0.15kg×(80℃-30℃-20℃)=1.89×104J
答:水又吸收了1.89×104J热量.
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