The equilibrium constant, K, for the following reaction is 5.00x10-2 at 642 K. CoCl2(g) CO(g) + Cl2(g) An equilibrium mixture of the three gases in a 5.49 L container at 642 K contains 0.288 M COCI2, 0.120 M CO and 0.120 M Cl2. What will be the concentrations of the three gases once equilibrium has been reestablished, if the volume of the container is increased to 11.9 L? [COCI2] = [CO] [Cl2] %3D ΣΣΣ II

Chemistry for Engineering Students
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Chapter12: Chemical Equilibrium
Section: Chapter Questions
Problem 12.45PAE: The following equilibrium is established in a closed container: C(s)+O2(g)CO2(g)H=393kJmol1 How does...
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The equilibrium constant, K, for the following reaction is 5.00x10-2 at 642 K.
COCI2(g) :
=CO(g) + Cl2(g)
An equilibrium mixture of the three gases in a 5.49 L container at 642 K
contains 0.288 M COCI2, 0.120 M CO and 0.120 M Cl2. What will be the
concentrations of the three gases once equilibrium has been reestablished, if
the volume of the container is increased to 11.9 L?
[COCI2] =
[CO]
[Cl2]
M
ΣΣΣ
Il||
Transcribed Image Text:The equilibrium constant, K, for the following reaction is 5.00x10-2 at 642 K. COCI2(g) : =CO(g) + Cl2(g) An equilibrium mixture of the three gases in a 5.49 L container at 642 K contains 0.288 M COCI2, 0.120 M CO and 0.120 M Cl2. What will be the concentrations of the three gases once equilibrium has been reestablished, if the volume of the container is increased to 11.9 L? [COCI2] = [CO] [Cl2] M ΣΣΣ Il||
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