For the reaction
Calculate `K_(P)`at900K where the equilibrium straem -hydrogen mixture was 45% `H_(2)` by volume :

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

Pure PCl_(5) is introduced into an evacaated chamber and to equilibrium at 247^(@)C and 2.0 atm .The equilibrium gases mixure contains 40% choririne by volume . Calculate K_(p) at 247^(@)C for the reaction PCl_(5)(g)hArrPCl_(3)(G)+Cl_(2)(g)

In the reaction C(s)+CO_(2)(g) hArr 2CO(g) , the equilibrium pressure is 12 atm. If 50% of CO_(2) reacts, calculate K_(p) .

11 moles of N_(2) and 12 moles of H_(2) mixture reacted in 20 litre vessel at 800 K. After equilibrium was reached, 6 mole of H_(2) was present. 3.58 litre of liquid water is injected in equibrium mixture and resultant gaseous mixture suddenly cooled to 300K. What is the final pressure of gaseous mixture? Neglect vapour pressure of liquid solution. Assume (i) all NH_(3) dissolved in water (ii) no change in volume of liquid (iii) At 300 K no reaction takes place between N_(2) and H_(2)

Given [CS_(2)]=0.120M,[H_(2)]=0.10,[H_(2)S]=0.20 and [CH_(4)]=7.40xx10^(-5)M for the following reaction at 900^(@) C at eq.Calculate the equilibrium constant (K_(c)) . CS_(2)(g) +4H_(2)(g)->CH_(4)+2H_(2)S(g)

Consider the pertial decomposition of A as 2A(g)hArr2B(g)+C(g) At equilibrium 700 mL gaseous mixture contains 100 mL of gas C at 10 atm and 300K what is the value of K_(p) for the reaction ?

The equilibrium constant for the following reaction is 10.5 at 500 K .A syatem at equilibrium has [CO]=0.250M and [H_(2)]=0.120 M "what is the "[CH_(3)OH] ? CO(g)+2H_(2)(g)hArrCH_(3)OH(g)

When sulphur ( in the form of S_(8)) is heated at temperature T , at equilibrium , the pressure of S_(8) falls by 30% from 1.0 atm , because S_(B)(g) in partially converted into S_(2)(g) . Find the value of K_(P) for this reaction.

For the reaction 2NO_(2)(g)+(1)/(2)O_(2)(g)hArrN_(2)O_(5)(g) if the equilibrium constant is K_(p) , then the equilibrium constant for the reaction 2N_(2)O_(5)(g)hArr4NO_(2)(g)+O_(2)(g) would be :

N_(2)(g)+3H_(2)(g)hArr2NH_(3)(g) For the reaction intially the mole ratio was 1:3 of N_(2):H_(2) .At equilibrium 50% of each has reacted .If the equilibrium pressure is P, the parial pressure of NH_(3) at equilibrium is :