A vessel at 1000 K contains `CO_(2)` with a pressure of 0.5 atm. Some of `CO_(2)` is converted into CO on addtion of graphite. The value of K' at equilibrium when total pressure is 0.8 atm will be

A vessel at 100K contains CO_(2) with a pressure of 0.5 atm. Some of the CO_(2) is converted into CO on addition of graphite. Calculate the value of K if total pressure at equilibrium is 0.8 atm.

A vessel at 1000 K contains CO_(2) at 0.4 atm . If certain amount of CO_(2) is converted into CO by the addition of graphite , the following equilibrium is established CO_(2) + C hArr 2CO , at a pressure of 0.6 atm , then equilibrium constant is

For the reaction, 0.5 C(s)+0.5CO_(2)(g) hArr CO(g) the equilibrium pressure is 12 atm. If CO_(2) conversion is 50%, the value of K_(p) , in atom is

In the reaction C_((s)) + CO_(2(g)) hArr CO_(2(g)) , the equilibrium pressure is 6.75 atm. If 50% of CO_(2) reacts then the find value of K_(p) .

If 0.05 mole of gas are dissolved in 500 grams of water under 1 atm. pressure, 0.1 moles will be dissolved if the pressure is 2atm. It illustrates