Chemistry, asked by nareshede9, 11 months ago

Q) 20mL mixture of CO and C2H4 was exploded with 50mL of O2. The volume after explosion was 45ml on shaking with NaOH soln only 15ml O2 was left behind what were the volume of CO and C2H4 IN MIXTURE?
Q2) 12ml of a gaseous hydrocarbon was exploded with 50 ml of oxygen. The volume after explosion was 32ml . On treatment with KOH the volume reduce to 8ml. Then formula of hydrocarbon is

Answers

Answered by Anonymous
2

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CH4 & C2H4 only reacts with O2 to produce CO2 & H2O.

The CO2 present in the original mixture do not react and remains as such

let the volume of CH4= x ml

volume of C2H4= y ml,

Therefore:volume of CO2=(10-x-y)ml

contraction in volume due to explosion=17ml

and contraction of volume after treatment with KOH=14ml=volume of CO2 produced.

the combustion reaction are;CH4(g)+2O2(g)............>CO2(g)+2H2O(l).........(i)

xml 2xml xml

C2H4(g)+3O2......>2CO2(g)+2H2O(l)............(ii)

yml 3yml 2yml

contraction in volume in reaction.................(i)

y+2x-x=2xml

contraction in volume in reaction...............(ii)

y+3y-2y=2yml

Total contraction in volume=2(x+y)ml

Now

2(x+y)=17...........(ii)

& total volume of CO2 produced in reaction..........(i) &(ii),=x+2yml

The total volume of CO2 present in the mixture=x+2y+10-x=(y+10)ml

the volume of CO2 is absorbed in KOH,

THEREFORE;

y+10=14 or y=4ml

 substituting this value in equation (iii)we get:

x=4.5ml

10-x-y=10-4.5-4=1.5ml

volume of CH4 in the mixture =4.5ml

volume of C2H4 in the mixture=4ml

volume of CO2 in the mixture=1.5ml

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