The equilibrium constant, K., for the following reaction is 9.52×10-2 at 350 K. CH (g) + CCl, (g)=2 CH,Cl, (g) Calculate the equilibrium concentrations of reactants and product when 0.240 moles of CH, and 0.240 moles of CCI, are introduced into a 1.00 L vessel at 350 K. [ CH, ] [ CCI, ] [ CH,Cl, ] =| M M M

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Chapter8: Reaction Rates And Equilibrium
Section: Chapter Questions
Problem 8.50E
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The equilibrium constant, K., for the following reaction is 9.52x10-2 at 350 K.
CH, (g) + CCl, (g) =2 CH,Cl, (g)
Calculate the equilibrium concentrations of reactants and product when 0.240 moles of CH, and 0.240 moles of CCI, are introduced into a 1.00 L vessel at
350 K.
[ CH, ]
[ CCI, ]
[ CH,CI, ]=
M
Transcribed Image Text:The equilibrium constant, K., for the following reaction is 9.52x10-2 at 350 K. CH, (g) + CCl, (g) =2 CH,Cl, (g) Calculate the equilibrium concentrations of reactants and product when 0.240 moles of CH, and 0.240 moles of CCI, are introduced into a 1.00 L vessel at 350 K. [ CH, ] [ CCI, ] [ CH,CI, ]= M
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