test 91/92

Submitted by IvanArsic on Tue, 06/17/2014 - 15:01
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Koliko se mililitara azota i mililitara kiseonika dobiva razlaganjem 300ml azota suboksida(pod istim uslovim)?

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milicaradenkovic - Tue, 06/17/2014 - 17:19

2N2O----------------->2N2+O2

n(N2O)=V(N2O)/Vm=0.3/22.4=0.0134 mol

n(O2)=n(N2O)/2=0.0134/2=0.0067 mol

V(O2)=n(O2)*Vm=22.4*0.0067=0.15 l=150 ml

n(N2)=n(N2O)=0.0134 mol

V(N2)=n(N2)*Vm=0.0134*22.4=0.3 l=300 ml

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IvanArsic - Thu, 06/19/2014 - 14:46

Dobiveno je150ml O2 I 300ML N2 ,.. jel tako?

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milicaradenkovic - Thu, 06/19/2014 - 16:59

Da.