The equilibrium constant, K, for the following reaction is 10.5 at 350 K. 2CH,Cl2(g) CH4(g) + CCl4(g) An equilibrium mixture of the three gases in a 1.00 L flask at 350 K contains 5.12×10-2 M CH,Cl,, 0.166 M CH and 0.166 M CCI. What will be the concentrations of the three gases once equilibrium has been reestablished, if 3.99x10-2 mol of CH,CI,(g) is added the flask? [CH,C] = M [CH4] %3D [CC14]

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The equilibrium constant, K, for the following reaction is 10.5 at 350 K.
2CH,Cl(g) CH4(g) + CCL4(g)
An equilibrium mixture of the three gases in a 1.00 L flask at 350 K contains 5.12×10-2 M CH,Cl,, 0.166 M CH, and 0.166 M CCI. What will be the
concentrations of the three gases once equilibrium has been reestablished, if 3.99×10-2 mol of CH,Cl,(g) is added to the flask?
[CH,Cl,] =
M.
[CH4]
M
[CC1]
M
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Transcribed Image Text:n/takeAssignment/takeCovalentActivity.do - TripAdvisor Facebook [Review Topics] [References] Use the References to access important values if needed for this question. The equilibrium constant, K, for the following reaction is 10.5 at 350 K. 2CH,Cl(g) CH4(g) + CCL4(g) An equilibrium mixture of the three gases in a 1.00 L flask at 350 K contains 5.12×10-2 M CH,Cl,, 0.166 M CH, and 0.166 M CCI. What will be the concentrations of the three gases once equilibrium has been reestablished, if 3.99×10-2 mol of CH,Cl,(g) is added to the flask? [CH,Cl,] = M. [CH4] M [CC1] M Submit Answer Retry Entire Group 1 more group attempt remaining Previous Next Email Instructor Save and Exit
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The equilibrium is a condition of a reaction in which the concentration of reactant and product gets stable and does not change with time.

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