The equilibrium constant for the following reaction is : [tex]\frac{[CO2][H2]}{[CO][H2O]}[/tex]
- The equilibrium constant of a chemical reaction (usually denoted by the symbol K) provides insight into the relationship between the products and reactants when a chemical reaction reaches equilibrium.
- For example, the equilibrium constant of concentration (denoted by Kc) of a chemical reaction at equilibrium can be defined as the ratio of the concentration of products to the concentration of the reactants, each raised to their respective stoichiometric coefficients.
- It is important to note that there are several different types of equilibrium constants that provide relationships between the products and the reactants of equilibrium reactions in terms of different units.
- For a chemical reaction, the equilibrium constant can be defined as the ratio between the amount of reactant and the amount of product which is used to determine chemical behaviour.
- At equilibrium, Rate of the forward reaction = Rate of the backward reaction
So in this given equation, equilibrium constant for the is : [tex]\frac{[CO2][H2]}{[CO][H2O]}[/tex]
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