Advertisements
Advertisements
Question
At 450 K, Kp= 2.0 × 1010/bar for the given reaction at equilibrium.
\[\ce{2SO2(g) + O2(g) ⇌2SO3 (g)}\]
What is Kc at this temperature?
Numerical
Solution
For the given reaction,
Δn = 2 – 3 = – 1
T = 450 K
R = 0.0831 bar L bar K–1 mol–1
`"K"_"p"` = 2.0 × 1010 bar –1
We know that,
`"K"_"P" = "K"_"C"("RT")triangle"n"`
`= 2.0 xx 10^10 "bar"^(-1) = "K"_"C"(0.00831" L bar K"^(-1) "mol"^(-1) xx 450" K")^(-1)`
`=> "K"_"C" = (2.0 xx 10^10 "bar"^(-1))/(0.0831 " L bar K"^(-1) "mol"^(-1)xx 450" K")`
`= (2.0 xx 10^(10) "bar"^(-1))(0.0831 "bar K"^(-1) "mol"^(-1) xx 450" K")`
`= 74.79 xx 10^10 "L mol"^(-1)`
`= 7.48 xx 10^(11) "L mol"^(-1)`
`= 7.48 xx 10^(11) " M"^(-1)`
shaalaa.com
Equilibrium in Physical Processes - Equilibrium Involving Dissolution of Gases in Liquids
Is there an error in this question or solution?
