banana_monkey
Better than you
I already went out last nightfadykozman said:
-
Best of luck to the class of 2024 for their HSC exams. You got this! Let us know your thoughts on the HSC exams here -
YOU can help the next generation of students in the community! Share your trial papers and notes on our Notes & Resources page
Industrial Chemistry Equilibrium question (1 Viewer)
- Thread starter Steven88
- Start date
fadykozman
New Member
- Joined
- Apr 9, 2004
- Messages
- 15
i guess that makes you a nerd then doesn't it, if i were you i wouldn't stay home...lol
psst (I would go to the library)
psst (I would go to the library)
banana_monkey
Better than you
Question:
Nitrogen dioxide forms an equilibrium mixture with dinitrogen tetraoxide as shown
2NO2 <----> N2O4
At 25 degrees, a 1.0L vessel initially contained 0.132mon of NO2 gas. Once equilibrium had been established, there was 0.04mol of N2O4 in the vessel
Eh, workings in the bottom post. Damm double posts.
Nitrogen dioxide forms an equilibrium mixture with dinitrogen tetraoxide as shown
2NO2 <----> N2O4
At 25 degrees, a 1.0L vessel initially contained 0.132mon of NO2 gas. Once equilibrium had been established, there was 0.04mol of N2O4 in the vessel
Eh, workings in the bottom post. Damm double posts.
Last edited:
banana_monkey
Better than you
Question:
Nitrogen dioxide forms an equilibrium mixture with dinitrogen tetraoxide as shown
2NO2 <----> N2O4
At 25 degrees, a 1.0L vessel initially contained 0.132mon of NO2 gas. Once equilibrium had been established, there was 0.04mol of N2O4 in the vessel
Working:
2NO2 <----> N2O4
Initial 0.132 <----> 0
Change 0.08 <----> 0.04
Equilibrium 0.052 <----> 0.04
Products over reactants:
Thus (0.04)/(0.052)^2 = 14.8
Conclusion: Where the hell did you pull your numbers from? There was NO dinitrogen tetraoxide in the flask initially, it formed only AFTER equilibrium was reached. You both need to read the question.
I'm open to either of you showing your working using that set out to show how you got your numbers. If I'm wrong I'm wrong, but I just don't see how my working has it wrong.
Nitrogen dioxide forms an equilibrium mixture with dinitrogen tetraoxide as shown
2NO2 <----> N2O4
At 25 degrees, a 1.0L vessel initially contained 0.132mon of NO2 gas. Once equilibrium had been established, there was 0.04mol of N2O4 in the vessel
Working:
2NO2 <----> N2O4
Initial 0.132 <----> 0
Change 0.08 <----> 0.04
Equilibrium 0.052 <----> 0.04
Products over reactants:
Thus (0.04)/(0.052)^2 = 14.8
Conclusion: Where the hell did you pull your numbers from? There was NO dinitrogen tetraoxide in the flask initially, it formed only AFTER equilibrium was reached. You both need to read the question.
I'm open to either of you showing your working using that set out to show how you got your numbers. If I'm wrong I'm wrong, but I just don't see how my working has it wrong.
banana_monkey
Better than you
And yes, I did notice that. Hence, 0.08 mols of NO2 was needed to make up 0.04 N2O4, due to the 2:1 ratio. You didn't double the 0.132 mol of NO2 inside the flask did you? The reaction is used as a guide for stoichimetry, it doesn't mean you double the amount of NO2 in the flask. Whats in there is in there, just because the reaction says there is 2NO2 doesn't mean that some how, the 0.132 mol in the flask becomes 0.264 or whatever.Chicago said:
I see what you've done, and I can tell you that you do not double the amount of mols inside the flask. I think we'll have to agree to disagree on this one, because I see where you are coming from but I believe what I got was correct. Let us know what you end up getting for chem, it'll be interesting to see how the markers do it.
Last edited:
Chicago is a stupid IDIOT... its an exothermic reaction. this is the equil did for my modelling prac n its an exothermic reaction... even look up chem textbooks... if u wanna beleieve its endo ur a stupid idiot
btw K = 14.8
btw K = 14.8
tabularasa
Member
meh i'll get marks for working i figure.
justchillin
Member
- Joined
- Jun 11, 2005
- Messages
- 210
- Gender
- Male
- HSC
- 2005
yep perfectly correct... surprised more people didn't get this... 1) it's easy lolXenocide said:Um, i have a different answer to you all
equation of form 2A ----> B to simplify it
given info:
0.132 moles of A INITIALLY
0.04 moles of B at EQUILIBRIUM
from 2:1 mole ration, 0.08 moles of A must have reacted to form 0.04 moles of B
therefore, A at equilibirum = .132-.08
k = B/A^2
= 14.8
and 2) it's been in a past HSC (like 02 or smtin)
justchillin
Member
- Joined
- Jun 11, 2005
- Messages
- 210
- Gender
- Male
- HSC
- 2005
Man the 2NO2 is just the mole ratio... there was still .132 mole added initially...Chicago said:
fadykozman
New Member
- Joined
- Apr 9, 2004
- Messages
- 15
i am not as stupid as Chicago, at least he knows whata hell he is talkin about, not a bunch of egomaniacs who think that since i say they might be wrong then the world is flipped upside down, egghead
stupid = your mum
stupid = your mum
sarah kiss
New Member
- Joined
- Jun 6, 2005
- Messages
- 8
yay i got da same answer
Yay! i got 14.8 as well i was scared that i was wrong yippee at least i got sumthang rite
Yay! i got 14.8 as well i was scared that i was wrong yippee at least i got sumthang rite