What is left after the reaction?
`N_(2) (1 L) + H_(2) (4 L) to NH_(3)(g)`

At 527^(@)C , the reaction given below has K_(c)=4 NH_(3)(g)hArr(1)/(2)N_(2)(g)+(3)/(2)H_(2)(g) what is the K_(p) for the reaction ? N_(2)(g)+3H_(2)(g)hArr2NH_(3)(g)

If Delta_(f)G^(@) for NH_(3)(g) is -16.4 kJ "mol"^(-1) , then DeltaG^(@) for the reaction: N_(2)(g) + 3H_(2)(g) to 2NH_(3)(g) is

What is DeltaG^(@) for the reaction? (1)/(2)N_(2)(g)+(3)/(2)H_(2)(g) to NH_(3)(g) K_(p)=4.42xx10^(4) at 25^(@)C.

A mixture of 1.57 mol of N_(2) ,1.92 mol of H_(2) and 8.17 mol of NH_(3) is introduced in a 20 L reaction vessel at 500 K. At this temperature, the equilibrium constant K_(c) for the reaction is 1.7 xx 10^(-2) . Is the reaction at equilibrium? The reaction is N_(2)(g)+3H_(2)(g) rarr 2NH_(3)(g)

For the reaction N_(2) (g) + 3 H_(2) (g) hArr 2 NH_(3) (g) " at " 400 K , K_(p) = 41 Find the value of K_(p) for the following reaction : 1/2 N_(2) (g) + 3/2 H_(2) hArr NH_(3) (g)

The reaction quotient (Q) for thereaction N_(2)(g)+3H_(2)(g)hArr2NH_(3)(g) is given by Q = ([NH_(3)]^(2))/([N_(2)][H_(2)]^(3)) The reaction will proceed from right to left if where K_(C) is the equilibrium constant.

A mixture of 1.57 mol of N_(2), 1.92 mol of H_(2) and 8.13 mol of NH_(3) is introduced into a 20 L reaction vessel at 500 K . At this temperature, the equilibrium constant K_(c ) for the reaction N_(2)(g)+3H_(2)(g) hArr 2NH_(3)(g) is 1.7xx10^(2) . Is the reaction mixture at equilibrium? If not, what is the direction of the net reaction?