If the equilibrium constant for the reaction 2SO2 + O2 ⇋ 2SO3 is 64 at 500 K, then the equilibrium constant for the reaction at the same temperature is
Solubility of a substance which dissolves with a decrease in volume and absorption of heat will be favoured by:
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At constant pressure, the presence of inert gases:
The degree of dissociation of an electrolyte depends on:
In the equilibrium reaction, N2 + 3H2 ⇔ 2NH3 , the sign of Δ H accompanying the reaction is;
In a reversible reaction H2 + I2 ⇋ 2HI, if the concentration of H2 and I2 are increased, the value of Kc:
For an exothermic reaction, the equilibrium constant :
An increase in pressure would favor the following reaction:
Assertion A: A catalyst has no effect on the state of equilibrium
Reason R: A catalyst influences the rates of both forward and backward reactions to the same extent.
Which of the following is not affected by change in pressure?
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