Answer:
χₛₒ₃ = 0.176; χₛₒ₂ = 0.549; χₒ₂ = 0.275
Explanation:
1. Set up an ICE table
We don't know the pressures, but we can use the mole fractions, which are in the same ratios as the pressures. I will use x instead of ϵ because it's easier to type.
Assume an initial unit pressure.
2SO₃ ⇌ 2SO₂ + O₂
I: 1 0 0
C: -2x +2x +x
E: 1 - 2x 2x x
Total = 1 - 2x + 2x + x = 1 + x
χₛₒ₃ = (1-2x)/(1 + x)
χₛₒ₂ = 2x/(1 + x)
χₒ₂ = x/(1 + x)
The equilibrium relationship is
[tex]K = \dfrac{\chi_{\text{SO2}}^{2} \chi_{\text{O2}} }{\chi_{\text{SO3}}^{2}} = \dfrac{\left ({\frac{2x}{1+x}}\right )^{2}{\left (\frac{x }{1+x}\right)}}{\left (\frac{1-2x }{1 + x}\right )^{2}}=\dfrac{4x^{3}}{(1-2x)^{2}(1+x)} = 2.667[/tex]
This is a cubic equation and not easy to solve. In the question, it is solved by successive approximations. I instead used an online calculator to get
x₁ = -1.2345, x₂ = 0.3785, and x₃ = 0.8559
We reject x₁, because x cannot be negative.
We reject x₃, because x cannot be greater than 0.5.
∴ x = 0.3785
χₛₒ₃ = (1-2x)/(1 + x}) = (1 - 2(0.3785))/(1+ 0.3785) = (1 - 0.7571)/1.3785 = 0.2429/1.37854 = 0.176
χₛₒ₂ = 2x/(1 + x) = 0.7571/1.3785 = 0.549
χₒ₂ = x/(1 + x) = 0.3785/1.3785 = 0.275
The equilibrium mole fractions are χₛₒ₃ = 0.176; χₛₒ₂ = 0.549; χₒ₂ = 0.275
