Asked by Anonymous
if the equilibrium concentration of nitrogen at 18degrees C is 0.256M and equil. concen. of hydrogen is 0.0184M what is the equil. concen. of ammonia?
N2 + 3 H2 <=> 2 NH3;
so K= [NH3]^2 / [N2][H2]^3
Is this correct?
Then ICE table? Giving me....
K= (2x)^2 / (0.256-x)(0.0814 -3x)^3
Am I on the right track?
N2 + 3 H2 <=> 2 NH3;
so K= [NH3]^2 / [N2][H2]^3
Is this correct?
Then ICE table? Giving me....
K= (2x)^2 / (0.256-x)(0.0814 -3x)^3
Am I on the right track?
Answers
Answered by
DrBob222
You have substituted 0.256-x as the equilibrium concn of N2 but the problem states it is 0.256M. You have substituted 0.0184-3x as the equil concn of H2 but the problem states it is 0.0184M.
Answered by
Anonymous
Oh and K=.0244
so is this correct?
.0244 = (2x)^2 / (0.256)(0.0814)^3
x= 9x10^-4
so is this correct?
.0244 = (2x)^2 / (0.256)(0.0814)^3
x= 9x10^-4
There are no AI answers yet. The ability to request AI answers is coming soon!
Submit Your Answer
We prioritize human answers over AI answers.
If you are human, and you can answer this question, please submit your answer.