The equilibrium constant, K. for the following reaction is 7.00-10 at 673 K NH,16)ENH,(g) + HI() Calculate the equilibrium concentration of HI when 0.344 moles of NH, I6) are introduced into a 1.00L vessel at 673 K M

Chemistry: The Molecular Science
5th Edition
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Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter12: Chemical Equilibrium
Section: Chapter Questions
Problem 53QRT: Consider the equilibrium N2(g)+O2(g)2NO(g) At 2300 K the equilibrium constant Kc = 1.7 103. If 0.15...
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The equilibrium constant, K. for the following reaction is 7.00-10 at 673 K.
NH,I)NH,(2) + HI(g)
Calculate the equilibrium concentration of HI when 0.344 moles of NH,I6) are introduced into a 1.00 L vessel at 673 K.
[HI] =|
M
Transcribed Image Text:The equilibrium constant, K. for the following reaction is 7.00-10 at 673 K. NH,I)NH,(2) + HI(g) Calculate the equilibrium concentration of HI when 0.344 moles of NH,I6) are introduced into a 1.00 L vessel at 673 K. [HI] =| M
The equilibrium constant, K., for the following reaction is 10.5 at 350 K
2CH,Cl,(g)CH,(g)+ CC1,(2)
Calculate the equilibrium concentrations of reactant and products when 0.380 moles of CH,CI, are introduced into a 1.00 L vessel at 350 K
[CH;Cl,] =
M
(CH,)
[CCL)
M.
M
Transcribed Image Text:The equilibrium constant, K., for the following reaction is 10.5 at 350 K 2CH,Cl,(g)CH,(g)+ CC1,(2) Calculate the equilibrium concentrations of reactant and products when 0.380 moles of CH,CI, are introduced into a 1.00 L vessel at 350 K [CH;Cl,] = M (CH,) [CCL) M. M
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