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Chemistry 8 Online
OpenStudy (ashley1nonly):

The equilibrium constant is given for one of the reactions below. Determine the value of the missing equilibrium constant. N2O4(g) ⇌ 2 NO2(g) Kc = 1.46 5 N2O4(g) ⇌ 10 NO2(g) Kc = ? A) 1.46 B) 0.292 C) 6.63 D) 1.08 E) 7.30 Answer: C

OpenStudy (ashley1nonly):

i know that we can use the reverse= 1/forward

OpenStudy (anonymous):

is this hess law

OpenStudy (ashley1nonly):

now this is law of mass action

OpenStudy (anonymous):

kk, 1 sec let me figure this out

OpenStudy (anonymous):

almost there

OpenStudy (ashley1nonly):

ok

OpenStudy (anonymous):

Im wondering why it is not 7.3, because you are doubing the same equation

OpenStudy (ashley1nonly):

hmmm that the same thing i was looking for

OpenStudy (anonymous):

1.46*5

OpenStudy (ashley1nonly):

wait its not an reverse reaction so you wouldnt use 1/forrward would you just take the 1.46^5 since they are both forward

OpenStudy (anonymous):

ah yes. nice job!

OpenStudy (ashley1nonly):

ok i have one more which is similar to this one

OpenStudy (anonymous):

kk, i forgot that exponet rule

OpenStudy (ashley1nonly):

no problems we are human. you are helping me learn

OpenStudy (anonymous):

thanks for helping me refresh

OpenStudy (anonymous):

whats the next one

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