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Problems · Problem 4.9

Q.Calculate the work done in oxidation of 4 moles of SO2_2 at 250^0C if 2 SO2(g)+O2(g)→2 SO3(g)\mathrm{2\,SO_2(g) + O_2(g) \rightarrow 2\,SO_3(g)} RR = 8.314 J K−1^{-1}mol−1^{-1} State whether work is done on the system or by the system.

Maharashtra MsbshseTextbookSubjectiveImportance★★★★★
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Δng=−2\Delta n_g = -2 for 4 mol SO2_2; W=−ΔngRT=+2×8.314×298=+4955W = -\Delta n_g RT = +2 \times 8.314 \times 298 = +4955 J = +4.955 kJ, done ON the system.

Step 1. The given equation is written for 2 mol SO2_2; for 4 mol, double it: 4 SO2(g)+2 O2(g)→4 SO3(g)\mathrm{4\,SO_2(g) + 2\,O_2(g) \rightarrow 4\,SO_3(g)}.

Step 2. Δng\Delta n_g = gaseous product moles −- gaseous reactant moles =4−(4+2)=−2= 4 - (4 + 2) = -2 mol.

Step 3. W=−ΔngRT=−(−2)×8.314×298=+4955W = -\Delta n_g RT = -(-2) \times 8.314 \times 298 = +4955 J. …

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