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Q.

A gaseous hydrocarbon required 6 times its own volume of O2 for complete oxidation and produces 4 times its volume of CO2. Then the formula is,

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a

Butane

b

Butene

c

Propene

d

Propane

answer is B.

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Detailed Solution

CxHy+(x+y/4)O2→xCO2+y/2H2O(ℓ)1vo1 6=(x+y/4) 4=x 6 times of (H.C) 4 times of (H.C)x+y/4=6⇒4+y/4=6⇒y/4=2;y=8∴C4H8

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