1)For the reaction shown below, the initial concentrations for reactants and products are as follows: [A] = 1.23 M. (B] = 0.0652 M, [C] = 0.0353 M, and [D] = 1.11 M. If the equilibrium constant
for the reaction is Kc = 0.0044, which direction does the reaction have to shift to reach equilibrium?
3A + 3B<->3C + D
Enter L if it shifts left, R if it shifts right, or E if it's already at equilibrium. Your answer must be UPPERCASE.
2) For the reaction shown below, indicate whether the equilibrium shifts to the left, (enter L), to the right (enter R), or stays the same (enter S) when: the volume of the reaction vessel is
increased. Your answer MUST be UPPERCASE.
2 NO (g) + Br2 (g) = 2 NOBr (g), ΔH° xn = -32.5 kJ/mol
1)For the reaction shown below, the initial concentrations for reactants and products are as follows: [A] = 1.23 M. (B]
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1)For the reaction shown below, the initial concentrations for reactants and products are as follows: [A] = 1.23 M. (B]
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