Answer: the equilibrium conversion is 0.15 or 15mole %
K=1.33
Explanation:
Given the mole percent of the gases to be as follows
SO2(g) =15% = 0.15mol
O2(g) =20% = 0.20mol
N2(g) = 65% = 0.65mol
The equilibrium conversion reaction is given by
2SO2(g) + O2(g) <------> 2SO3(g)
2 1. 2
According to the reaction 2 moles of SO2 is converted to get 2 mole of SO3
Therefore 0.15 mole will produce 0.15 mole of SO3
So at equilibrium:
2SO2(g) + O2(g) ------> 2SO3(g)
0.15. 0.075. 0.15
Now the equilibrium constant K is given by:
K = [SO3]²/[SO2]²[O2]
Since the container is constant for all the reactants we can neglect the container capacity and use the mole as percent concentration.
K = [0.15]²/[0.15]²[0.075]
K = 1/0.075
K= 1.33
