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The equilibrium constant, Kp, for the following reaction is 1.70103 at 298K : 2NO(g)N2(g)+O2(g) Calculate the equilibrium partial pressures of all species when NO(g) is

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The equilibrium constant, Kp, for the following reaction is 1.70103 at 298K : 2NO(g)N2(g)+O2(g) Calculate the equilibrium partial pressures of all species when NO(g) is introduced into an evacuated flask at a pressure of 0.846 atm at 298K. PNO=PN2=atmatm A student ran the following reaction in the laboratory at 653K : 2NH3(g)N2(g)+3H2(g) When she introduced NH3(g) at a pressure of 0.841atm into a 1.00L evacuated container, she found the equilibrium partial pressure of H2(g) to be 1.24atm. Calculate the equilibrium constant, Kp, she obtained for this reaction

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