3.50 mol NOCl was placed in a 3.50 L reaction vessel at 400ºC.  After equilibrium was established, it was found that 36% of the NOCl had dissociated according to the equation                       2NOCl(g) 2NO(g) + Cl2(g).             Calculate the equilibrium constant, Kc, for the reaction.   *equilibrium sign in between NOCl and NO

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ChapterU6: Showtime: Reversible Reactions And Chemical Equilibrium
SectionU6.4: How Favorable: Equilibrium Constank K
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3.50 mol NOCl was placed in a 3.50 L reaction vessel at 400ºC.  After equilibrium was established, it was found that 36% of the NOCl had dissociated according to the equation

                      2NOCl(g) 2NO(g) + Cl2(g).

            Calculate the equilibrium constant, Kc, for the reaction.

 

*equilibrium sign in between NOCl and NO

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