`2 "mole"` of `PCl_(5)` were heated in a closed vessel of `2` `litre` capacity. At equilibrium `40%` of `PCl_(5)` dissociated into `PCl_(3)` and `Cl_(2)`. The value of the equilibrium constant is:

1.5 mol of PCl_(5) are heated at constant temperature in a closed vessel of 4 L capacity. At the equilibrium point, PCl_(5) is 35% dissociated into PCl_(3) and Cl_(2) . Calculate the equilibrium constant.

PCl_(5) on heating dissociates to PCl _(3) and Cl _(2) because :

3 mole of PCl_(5) were heated in a vessel of three litre capacity. At equilibrium 40% of PCl_(5) was found to be dissociated. What will be the equilibrium constant for disscoiation of PCl_(5) ?

Two moles of PCl_(5) were heated to 327^(@)C in a closed two-litre vessel, and when equilibrium was achieved, PCl_(5) was found to be 40% dissociated into PCl_(3) and Cl_(2) . Calculate the equilibrium constant K_(p) and K_(c) for this reaction.

Two moles of PCl_(5) were heated to 327^(@)C in a closed two-litre vessel, and when equilibrium was achieved, PCl_(5) was found to be 40% dissociated into PCl_(3) and Cl_(2) . Calculate the equilibrium constant K_(p) and K_(c) for this reaction.

2.0 mole of PCl_(5) were nttoducedd in a vessel of 5.0 L capacity of a particular temperature At equilibrium, PCl_(5) was found to be 35 % dissociated into PCl_(3)and Cl_(2) the value of K_(c) for the reaction PCl_(3)(g)+Cl_(2)(g)hArrPCl_(5)(g)

Four moles of PCl_(5) are heated in a closed 4 dm^(3) container to reach equilibrium at 400 K. At equilibrium 50% of PCl_(5) is dissociated. What is the value of K_(c) for the dissociation of PCl_(5) into PCl_(3) "and" Cl_(2) at 400 K ?

Two moles of PCl_(5) is heated in a closed vessel of 2 L capacity. When the equilibrium is attained 40 % of it has been found to be dissociated. What is the Kc in mol//dm^(3) ?

For the equilibrium PCl_5(g)hArr PCl_3(g) +Cl_2 , the value of the equilibrium constant decreases on additions of Cl_2 gas.