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The equilibrium constant, Kc, for the following reaction is 9.5210-2 at 350 K. CH4 (g) + CCl4 (g) 2 CH2Cl2 (g) Calculate the equilibrium concentrations
The equilibrium constant, Kc, for the following reaction is 9.5210-2 at 350 K. CH4 (g) + CCl4 (g) 2 CH2Cl2 (g) Calculate the equilibrium concentrations of reactants and product when 0.296 moles of CH4 and 0.296 moles of CCl4 are introduced into a 1.00 L vessel at 350 K. [ CH4 ] = M [ CCl4 ] = M [ CH2Cl2 ] = M Are You Sure? An error was detected in your answer. Check for typos, miscalculations, etc. before you submit this item again.
The equilibrium constant, Kc, for the following reaction is 9.52x10-2 at 350 K. CH4 (9) + CC14 (9) 2 CH2Cl2 (9) Calculate the equilibrium concentrations of reactants and product when 0.296 moles of CH4 and 0.296 moles of CCl4 are introduced into a 1.00 L vessel at 350 K. [ CH4 ] [ CC14 ] = [CH2Cl2 ]= =Step by Step Solution
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