at a given temperature, 0.300 mole NO, 0.200 mol Cl2 and 0.500mol ClNO were plac
ID: 952426 • Letter: A
Question
at a given temperature, 0.300 mole NO, 0.200 mol Cl2 and 0.500mol ClNO were placed in a 25.0 liter container. the following equilibrium established:
2ClNO(g)<->2NO(g)+Cl2(g)
1.at equilibrium, 0.600 mol of ClNO was present. what is the number of moles of Cl2 present at equilibrium
2.The equilibrium constant
3. 2 mol of NO is placed in a 1 liter flask at 2273K. After equilibrium is attained, 0.0863 mol N2 and 0.0863 mol O2 are present. what is Kc for this reaction ?
2NO(g)<->N2(g)+O2(g)
Explanation / Answer
K = NO^2 *Cl2 / (ClNO)^2
[NO] = 0.3/25 = 0.012
[Cl2] = 0.2/25 = 0.008
[ClNO] = 0.5/25= 0.02
in equilibrium
[NO] = 0.012 + 2x
[Cl2] = 0.008 + x
[ClNO] = 0.02 -2x
we know that
[ClNO] = 0.02 -2x = (0.6/25)
x = ((0.6/25)-0.02)/(-2) = -0.002
solv efor
[NO] = 0.012 + 2* -0.002 = 0.008
[Cl2] = 0.008 + -0.002 = 0.006
[ClNO] = 0.02 -2* -0.002 = 0.024
2
K = NO^2 *Cl2 / (ClNO)^2
K = (0.008^2)(0.006)/(0.024^2) = 0.0006666
3
when adding 2 mol of NO
[NO] = 2
[N2] = 0
[O2] = 0
in equilibrium
[NO] = 2 - 2x
[N2] = 0 +x = 0.0863
[O2] = 0+x = 0.0863
then
[NO] = 2 - 2*0.0863 = 1.8274
K = (N2)(O2) /(NO)^2 = (0.0863 )(0.0863 )/(1.8274^2)
K = 0.00223025411
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