Question #cb68a

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SCooke
Apr 22, 2017

Butane. C_4H_10

Explanation:

We use the reaction equation to find the moles of each substance from the given masses.
C_xH_n + O_2 → xCO_2 + (n/2)*H_2O

CO_2 = 9.6g; H_2O = 4.9g ; (9.6/44) = 0.22 mol CO_2; (4.9/18) = 0.27 mol H_2O
So, the molar ratios of x and n are 0.22 and 0.54 respectively, for relative molar ratios of 0.29 and 0.71. That ration means that n = (0.71/0.29)*x ; n = 2.45*x
The hydrocarbon formula is thus (12*x) + (1*n) = 58; (12*x) + (1*(2.45*x)) = 58
(14.45*x) = 58; x = 4; n = 10
The formula is thus C_4H_10.
This is the common form of an alkane C_nH_(2n+2), so it is butane.

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