Form the given data of equilibrium constants of the following reactions: `CuO(s)+H_(2)(g)hArrCu(s)+H_(2)O(g),K=67` `CuO(s)+CO(g)hArrCu(s)+CO_(2)(g),K=490` Calculate the equilibrium constant of the reaction, `CO_(2)(g)+H_(2)(g)hArrCu(s)+CO_(2)(g)+H_(2)O(g)`

Form the given data of equilibrium constants of the following reaction

1.	Form the given data of equilibrium constants of the following reactions: `CuO(s)+H_(2)(g)hArrCu(s)+H_(2)O(g),K=67` `CuO(s)+CO(g)hArrCu(s)+CO_(2)(g),K=490` Calculate the equilibrium constant of the reaction, `CO_(2)(g)+H_(2)(g)hArrCu(s)+CO_(2)(g)+H_(2)O(g)`
Answer» `Cu(s)+H_(2)(g)(g)hArrCuO(s)+H_(2)O(g),K_(1)=67` Now reversing the second reaction, `Cu(s)+CO_(2)(g)hArrCuO(s)+CO(g),` `K_(2)=1/490` Adding the two reactions, we get, `Co_(2)(g)+H_(2)hArrCO(g)+H_(2)O(g)` for which `K=K_(1).K_(2)=67xx1/490=0.137`

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Form the given data of equilibrium constants of the following reactions: `CuO(s)+H_(2)(g)hArrCu(s)+H_(2)O(g),K=67` `CuO(s)+CO(g)hArrCu(s)+CO_(2)(g),K=490` Calculate the equilibrium constant of the reaction, `CO_(2)(g)+H_(2)(g)hArrCu(s)+CO_(2)(g)+H_(2)O(g)`

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