Answer: The partial pressure of HBr at equilibrium is 6.98 atm
Explanation:
We are given:
Initial partial pressure of HBr = 7.40 atm
As, initially HBr is present. So, the reaction is proceeding backwards.
For the given chemical equation:
[tex]H_2(g)+Br_2(g)\rightarrow 2HBr(g)[/tex]
Initial: 7.40
At eqllm: x x 7.40-2x
The expression of [tex]K_p[/tex] for above equation follows:
[tex]K_p=\frac{(p_{HBr})^2}{p_{H_2}\times p_{Br_2}}[/tex]
We are given:
[tex]K_p=1.10\times 10^3[/tex]
Putting values in above expression, we get:
[tex]1.10\times 10^3=\frac{(7.40-2x)^2}{x\times x}\\\\x=-0.237,0.210[/tex]
Neglecting the negative value of 'x' because partial pressure cannot be negative.
So, equilibrium partial pressure of HBr = (7.40 - 2x) = [7.40 - 2(0.210)] = 6.98 atm
Hence, the partial pressure of HBr at equilibrium is 6.98 atm
