Consider the reaction H2(g) I2(g) Double headed arrow. HI(g) with an equilibrium constant of 46. 3 and a reaction quotient of 525. Which direction will the system shift to? The equilibrium will shift to the left to favor the reactants. The equilibrium will shift to the right to favor the products. The equilibrium will not shift in any direction. The equilibrium will shift to the forward reaction.

Respuesta :

Since the reaction quotient is greater than the equilibrium constant, the reaction will favor the reactants and shift to the left.

A reversible reaction could proceed in the forward direction or in the reverse direction depending on the values of Q and K. Q is known as the reaction quotient while K is the equilibrium constant.

Generally, when Q is greater than K, it is expected that the reaction should move in the reverse direction to favor the reactants.

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Answer:

A. The equilibrium will shift to the left to favor the reactants.

Explanation:

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