Asked by kilo
Calculate the delta H for the reaction
N2H4(l)+ O2(g) --> N2(g) + 2H20(l)
Given the following data:
2NH3(g) + 3N20(g) --> 4N2(g) + 3H20(l)
N20(g) + 3H2(g) --> N2H4(l) + H20(l)
2NH3(g) + 1/2O2(g) --> N2H4(l) + H20(l)
H2(g) + 1/2O2(g) --> H20(l)
N2H4(l)+ O2(g) --> N2(g) + 2H20(l)
Given the following data:
2NH3(g) + 3N20(g) --> 4N2(g) + 3H20(l)
N20(g) + 3H2(g) --> N2H4(l) + H20(l)
2NH3(g) + 1/2O2(g) --> N2H4(l) + H20(l)
H2(g) + 1/2O2(g) --> H20(l)
Answers
Answered by
DrBob222
Reverse equation 3.
Add equation 1.
Reverse and multiply equation 2 by 3 and add.
Multiply equation 4 by 9 and add.
Don't forget to multiply delta H by appropriate multipliers and don't forget to change the sign of those equations reversed. (You didn't show any of the delta H values).
You will end up with
4 N2H4 + 4O2 ==> 4N2 + 8H2O so all of the delta H values (multiplied and sign changed as appropriate) will be 4 times the value of delta H for 1 mole (instead of the four in the equation).
Add equation 1.
Reverse and multiply equation 2 by 3 and add.
Multiply equation 4 by 9 and add.
Don't forget to multiply delta H by appropriate multipliers and don't forget to change the sign of those equations reversed. (You didn't show any of the delta H values).
You will end up with
4 N2H4 + 4O2 ==> 4N2 + 8H2O so all of the delta H values (multiplied and sign changed as appropriate) will be 4 times the value of delta H for 1 mole (instead of the four in the equation).
Answered by
Anonymous
-143
Answered by
Mohamed avfi gyhjv
i wanna get more inform about these questions
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