MHT CET · Physics · Thermodynamics
When a system is taken from state ' \(a\) ' to state ' c ' along a path abc , it is found that \(\mathrm{Q}=80 \mathrm{cal}\) and \(\mathrm{W}=35 \mathrm{cal}\). Along path adc, \(\mathrm{Q}=65 \mathrm{cal}\) the work done W along path adc is
- A 20 cal .
- B 45 cal .
- C 35 cal .
- D 65 cal .
Answer & Solution
Correct Answer
(A) 20 cal .
Step-by-step Solution
Detailed explanation
For both the paths, \(\Delta \mathrm{U}\) remains same.
For path abc: \(\Delta \mathrm{U}=\mathrm{Q}-\mathrm{W}=80-35=45 \mathrm{cal}\) For path adc : \(\Delta U=45 \mathrm{cal}\) and \(Q=65 \mathrm{cal}\) \(\mathrm{W}=\mathrm{Q}-\Delta \mathrm{U}=65-45=20 \mathrm{cal}\)
For path abc: \(\Delta \mathrm{U}=\mathrm{Q}-\mathrm{W}=80-35=45 \mathrm{cal}\) For path adc : \(\Delta U=45 \mathrm{cal}\) and \(Q=65 \mathrm{cal}\) \(\mathrm{W}=\mathrm{Q}-\Delta \mathrm{U}=65-45=20 \mathrm{cal}\)
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