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Calculate the Kc value for the following reaction. Does the equilibrium favor the products or the reactants? (The = si equilibrium arrows.) 3NO(g)=N2O(g)+NO2(g) At equilibrium:
Calculate the Kc value for the following reaction. Does the equilibrium favor the products or the reactants? (The = si equilibrium arrows.) 3NO(g)=N2O(g)+NO2(g) At equilibrium: [NO]=0.70M,[N2O]=0.30M,[NO2]=0.30M Kc=3.8, products favored Kc=0.26, products favored Kc=0.13, reactant favored Kc=3.8, reactant favored Kc=0.13, products favored Kc=0.26, reactants favored
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