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Question

160 g of oxygen gas expand at STP to occupy double of its original volume. The work during the process is:
(1 L.atm=101.3J)

A
4.7 kcal
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B
2.7 kcal
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C
6.7 kcal
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D
8.7 kcal
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Solution

The correct option is B 2.7 kcal
At STP, 160 g of O2 or 5 mole of O2 will occupy 22.4×5=112 L volume.
Now, if the volume is doubled, it means V2 = 224 L
So, (V2V1) =224112=112 L
At STP = P = 1 atm
Now,putting values
w=P×(V2V1)=1×112 L atm=112 Latm
since,
1 Latm=101.3J
so,
112Latm=112×101.3 J =
w=11345.6 J

Since, 1 cal = 4.18 J
w=11345.64.18
=2711.7 cal =2.7 kcal

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