An equilibrium mixture from the following reaction was found to contain 0.60 M of CO, 0.60 M of Cl; and 0.80 M of COC12. CO(g) + Cl:(g) = COC: (g) a) Calculate K b) If the volume of the reaction vessel were suddenly doubled while the temperature remained constant, what would be the new equilibrium concentrations? c) If the volume of the reaction vessel were halved, while the temperature remains constant, what will the new equilibrium concentrations be?

Chemistry: The Molecular Science
5th Edition
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter12: Chemical Equilibrium
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Problem 60QRT
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An equilibrium mixture from the following reaction was found to contain 0.60 M of CO, 0.60 M of Clz and 0.80 M of COCI2.
CO(g) + Cl(g) = COCh (g)
a) Calculate K.
b) If the volume of the reaction vessel were suddenly doubled while the temperature remained constant, what would be
the new equilibrium concentrations?
c) If the volume of the reaction vessel were halved, while the temperature remains constant, what will the new
equilibrium concentrations be?
Transcribed Image Text:An equilibrium mixture from the following reaction was found to contain 0.60 M of CO, 0.60 M of Clz and 0.80 M of COCI2. CO(g) + Cl(g) = COCh (g) a) Calculate K. b) If the volume of the reaction vessel were suddenly doubled while the temperature remained constant, what would be the new equilibrium concentrations? c) If the volume of the reaction vessel were halved, while the temperature remains constant, what will the new equilibrium concentrations be?
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