If a $25.6*g$ mass of $"octane"$ is completely combusted, what mass of carbon dioxide will result?

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Answer 1 · 2017-06-29T07:32:11

Approx... $1.8*mol..........$

We need (i) a stoichiometrically balanced equation.....

$C_8H_18(l) + 25/2O_2(g) rarr 8CO_2(g) + 9H_2O(l)$

Is this balanced with respect to mass and charge? It must be if we purport to represent chemical reality.

And (ii) we need equivalent quantities of octane.....

$"Moles of octane"=(25.6*g)/(114.23*g*mol^-1)=0.224*mol$

And given the equation, CLEARLY we KNOW that 8 equiv of carbon dioxide result per equiv of octane.....

And thus a molar quantity of $8xx0.224*mol$ $CO_2(g)$ $=$ $??*mol$ $=$ $??*g$ .

Answer 2 · 2017-06-29T07:35:00

79 grams of carbondioxide

$C_8H_18 + 12.5 O_2 -> 8CO_2 + 9H_2O$

This is the chemical reaction.

1 mole of octane mass is 114 grams.

It means if you have 114 grams of octane, you will have 352 grams of $CO_2$ after the reaction.

However you have only 25.6 grams of octane. You can get how much carbondioxide after the reaction.

$=(25.6times352)/114$

$=79$ grams

If a 25.6*g25.6*g mass of "octane""octane" is completely combusted, what mass of carbon dioxide will result?