An ideal gas mixture of ethane (C2H6) and ethene (C2H4) occupies 28 litres at 1 atm and 273 K. The mixture reacts completely with 128 g of O2 to produce CO2 and H2O. The mole fraction of C2H6 in the mixture is:
A
0.6
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B
0.4
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C
0.5
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D
0.8
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Solution
The correct option is B 0.4 An ideal gas mixture of ethane and ethene occupies 28 L at 1 atm pressure and 273 K.
We know that,
1 mole of a gas at STP occupies 22.4 L
So, 28 L will be occupied by= 2822.4=1.25mol
Let nethane=a and nethene=b
so a+b=1.25 .......... (i)
Reaction of ethane and ethene with oxygen: C2H6+72O2→2CO2+3H2O
1 mole of C2H6 reacts with 72 mole of O2
So, ‘a’ moles of C2H6 (ethane) will react with=72a moles of O2
C2H4+3O2→2CO2+2H2O
‘b’ moles of C2H4 react with 3b moles of O2
Moles of O2 reacting in this mixture=72a+3b=128gofO2molarmassofO2=4mol 72×a+3b=4 .......... (ii)
On solving equation (i) and (ii) we get
a=0.5 and b=0.75
Mole fraction of ethane =0.51.25=0.4