Question #262844

how much heat must be absorbed by 475 grams of water to raise its temperature by 30°c


1
Expert's answer
2021-11-12T10:06:04-0500

m=475gm

∆T=30°C

Q=ms∆T



Q=475×4.18×30=59565J=59.565KJQ=475\times4.18\times30=59565J=59.565KJ


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