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Write Brief Answer · Q43

Q.Oxidation of nitrogen monoxide was studied at 200∘200^\circC with initial pressures of 1 atm NO and 1 atm of O2O_2. At equilibrium partial pressure of oxygen is found to be 0.52 atm. Calculate the KPK_P value.

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Step 1. 2NO(g)+O2(g)⇌2NO2(g)2NO(g)+O_2(g)\rightleftharpoons2NO_2(g), starting with pNO=1p_{NO}=1 atm, pO2=1p_{O_2}=1 atm. At equilibrium pO2=0.52p_{O_2}=0.52 atm, so the O2 consumed is x=1−0.52=0.48x=1-0.52=0.48 atm.

Step 2. By stoichiometry, NO consumed =2x=0.96=2x=0.96 atm and NO2 formed =2x=0.96=2x=0.96 atm. So at equilibrium: pNO=1−0.96=0.04p_{NO}=1-0.96=0.04 atm, pO2=0.52p_{O_2}=0.52 atm, pNO2=0.96p_{NO_2}=0.96 atm. …

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