Interpretation:
The expression for the equilibrium constant and the partial pressure of
Concept Introduction:
The condition of equilibrium is a state of balance of processes that runs in opposite directions. At equilibrium, the formation of a product from the reactant balances the formation of reactant from the product. Also, the change in concentration of reaction and product seems to be negligible at equilibrium state.
The general equilibrium reaction is as follows:
Here,
The expression of the equilibrium constant for the above reaction is as follows:
Here,
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Chemistry: Principles and Practice
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- If, at a given temperature, the equilibrium constant for the reaction H2(g) + Cl2(g) 2HCl(g) is Kp, then the equilibrium constant for the reaction HCl(g) → H2(g) + Cl2 (g) can be represented as:arrow_forwardThe equilibrium constant for the formation of sulfur trioxide, SO3, from sulfur dioxide, SO2, and oxygen, O2, SO2(g) + (1)/(2) O2(g) ⇌ SO3(g) is 2.643 x 1012 at 298 K. The standard reaction enthalpy is -98.9 kJ mol-1. Calculate the value of the equilibrium constant at 308 K. Assume that the standard reaction enthalpy is constant over this temperature range.arrow_forwardWrite the equilibrium constant expressions for Kç and Kp, if applicable, for the following reactions: (a) 2NO2(g) + 7H2(g) (b) 2ZnS(s) + 302(g) == 2Zn0(s) + 2SO2(g) (c) C(s) + CO2(g) = == 2NH3(g) + 4H2O(I) = 2C0(g) (d) C6H5COOH(aq) == C6H;COO (aq) + H*(aq)arrow_forward
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