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Question

Find the change in the entropy in the following process 100 gm of ice at 0C melts when dropped in a bucket of water at 50C (Assume temperature of water does not change)

A
– 4.5 cal/K
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B
+ 4.5 cal/K
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C
+5.4 cal/K
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D
– 5.4 cal/K
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Solution

The correct option is B + 4.5 cal/K

Gain of entropy of ice
S1=QT=mLT=80×100(0+273)=8×103273cal/K
Loss of entropy of water =S2=QT=mLT
=80×100(273+50)=8×103323cal/K
Total change of entropy
S1+S2=8×1032738×103323=±4.5 cal/K


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