For the reversible reaction
`H_2(g)+I_2(g)hArr2HI(g)`
the value of the equilibrium constant depends on the

In the reaction N_(2)(g)+3H_(2)(g)hArr 2NH_(3)(g) , the value of the equlibrium constant depends on

For the reaction H_(2)(g) + I_(2)(g)hArr2HI(g) at 721 K the value of equilibrium constant (K_(c)) is 50. When the equilibrium concentration of both is 0.5 M, the value of K_(p) under the same condtions will be

For a reaction : H_(2) (g) + I_(2) (g) hArr 2HI (g) at 721 K, the value of the equilibrium constant is 50. If 0.5 mole each of H_(2) " and "I_(2) are added to the system the value of the equilibrium constant will be :

For the reaction H_(2)(g)+I_(2)(g)hArr2HI(g) the equilibrium constant K_(p) changes with

For the reaction H_(2)(g)+I_(2)(g) hArr 2HI(g) The equilibrium constant K_(p) changes with

For the reaction H_(2)(g)+I_(2)(g)hArr2HI(g) , the equilibrium constant will change with

If the equilibrium constant of the reversible reaction HI(g)hArr1//2H_2(g)+1//2I_2(g) is 7.4 , the equilibrium constant for the reversible reaction 2HI(g)hArrH_2(g)+I_2(g) will be

The value of the equilibrium constant for the reaction : H_(2) (g) +I_(2) (g) hArr 2HI (g) at 720 K is 48. What is the value of the equilibrium constant for the reaction : 1//2 H_(2)(g) + 1//2I_(2)(g) hArr HI (g)