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[Post New]6 May 2007 15:51:34 IST
    Subject: find it
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spandana (5)

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at 27o c 4.6 grams of  N2O4  undergoes decomposition and exerts an equilibrium pressure of 1.6 atm when vapourised in a 1 lit flask.the fraction of N2O4 dissociated is           [N2O4---->2NO2]reversible reaction.
    
[Post New]6 May 2007 16:12:21 IST
    Subject: Re:find it
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taruntanuj007 (247)

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N2O4             2 NO2
0.05                     -
0.05-x                 2x
 
 
so 0.05 -x are the moles of N2O4 left at equilibirum
in a 1L vessel now its equilibrium pressure is 1.6 atm
 
PV = nRT
 
1.6 * 1 = (0.05-x) 0.0821 * 300
 
0.05 - x = 0.065
 
 
here 's the problem i think  sumdata is wrong since x is not negative x = - 0.015
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[Post New]8 May 2007 11:29:10 IST
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khushi (0)

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how can the answer be negative
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[Post New]8 May 2007 11:43:52 IST
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akku (1142)

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The answer is not negative .
I think in the last step
the moles corresponding to eqb pressure=.05-x+2x=.05+x=.065
which implies that x=.015
fraction of N2O4 DISSOCIATED=.015/.05=.3 ANSWER
 
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[Post New]8 May 2007 15:50:39 IST
    Subject: Re:find it
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smriti.mathur (442)

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Moles of N 2O4  = 4.6 / 82
PV = nRT
1.6 * 1 = n *  0.082 * 300
n = 16 / 82*3
N2 O4    2NO2
(1-x)           2x
If a is the initial conc.
a(1-x)         2ax
Total moles = 4.6/82 * (1+ x)  = 16 / 82*3
1 + x = 1.16
x = 0.16
Therefore, % dissociation = 0.16 * 100 = 16%
Lecturar, Organic Chemistry
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