Answer:
The reaction would shift toward the reactants
When the reaction reach equilibrium the partial pressure of NH3 will be greater than 1atm
Explanation:
For the reaction:
2NH₃(g) ⇄ N₂(g) + 3H₂(g)
Where K is defined as:
[tex]K = \frac{P_{N_{2}}*P_{H_2}^3}{P_{NH_3}^2} = 0.83[/tex]
As initial pressures of all 3 gases is 1.0atm, reaction quotient, Q, is:
[tex]Q = \frac{1atm*{1atm}^3}{1atm^2} = 1[/tex]
As Q > K, the reaction will produce more NH₃ until Q = K consuming N₂ and H₂.
Thus, there are true: