Respuesta :
Answer:
6.97 atm was the equilibrium pressure of HBr .
Explanation:
The value of the equilibrium constant =[tex]K_p=1.65\times 10^3[/tex]
[tex]H_2+Br_2\rightleftharpoons 2HBr[/tex]
Initially:
0 0 7.10 atm
At equilibrium
x x (7.10-2x)
The expression of equilibrium constant can be written as:
[tex]K_p=\frac{p_{HBr}}{p_{H_2}\times p_{Br_2}}[/tex]
[tex]1.65\times10^3=\frac{(7.10-2x)}{x^2}[/tex]
Solving for x:
x = 0.065
Partial pressure of HBr at equilibrium :(7.10 - 2 × 0.065) atm = 6.97 atm
6.97 atm was the equilibrium pressure of HBr .
