MHT CET · Chemistry · Thermodynamics (C)
In an isothermal and reversible process, \(1 \cdot 6 \times 10^{-2} \mathrm{~kg} \mathrm{O}_{2}\) expands from \(10 \mathrm{dm}^{3}\) to \(100 \mathrm{dm}^{3}\) at \(300 \mathrm{~K}\), work done in the process is \((\mathrm{R}=8.314 \mathrm{~J})\)
- A \(-1436 \mathrm{~J}\)
- B \(-5744 \mathrm{~J}\)
- C \(-4308 \mathrm{~J}\)
- D \(-2872 \mathrm{~J}\)
Answer & Solution
Correct Answer
(D) \(-2872 \mathrm{~J}\)
Step-by-step Solution
Detailed explanation
\(\mathrm{V}_{1}=10 \mathrm{dm}^{3} \quad, \mathrm{~V}_{2}=100 \mathrm{dm}^{3}, \quad \mathrm{~T}=300 \mathrm{~K}\),
\(\mathrm{R}=8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}, \mathrm{~m}_{\mathrm{O}_{2}}=1.6 \times 10^{-2}\) \(\mathrm{~kg}=16 \mathrm{~g}\)
\(\therefore \mathrm{n}=\frac{\mathrm{m}_{\mathrm{O}_{2}}}{\mathrm{M}_{\mathrm{O}_{2}}}=\frac{16}{32}=0.5 \mathrm{~mol}\)
For isothermal and reversible process,
\(W_{\max } =-2.303 \mathrm{nRT} \log _{10} \frac{V_{2}}{V_{1}}\)
\(\therefore W_{\max }=-2.303 \times 0.5 \times 8.314 \times 300 \times\) \(\log _{10} \frac{100}{10}=-2872 \mathrm{~J}\)
\(\mathrm{R}=8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}, \mathrm{~m}_{\mathrm{O}_{2}}=1.6 \times 10^{-2}\) \(\mathrm{~kg}=16 \mathrm{~g}\)
\(\therefore \mathrm{n}=\frac{\mathrm{m}_{\mathrm{O}_{2}}}{\mathrm{M}_{\mathrm{O}_{2}}}=\frac{16}{32}=0.5 \mathrm{~mol}\)
For isothermal and reversible process,
\(W_{\max } =-2.303 \mathrm{nRT} \log _{10} \frac{V_{2}}{V_{1}}\)
\(\therefore W_{\max }=-2.303 \times 0.5 \times 8.314 \times 300 \times\) \(\log _{10} \frac{100}{10}=-2872 \mathrm{~J}\)
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