Question #faee7

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Answer 1 · 2015-04-09T01:40:04

The gas that undergoes combustion produces 2428 J of heat, which implies that $q$ will be negative.

$q = color(green)(-"2428 J")$

Likewise, work done by the system means that work was performed by the gas on the surroundings, which once again implies a minus sign.

$w = color(green)(-"6 kJ")$

Because the gas burns at constant pressure, the heat given off will also be the enthalpy change, $DeltaH$

$DeltaH = q$ $->$ at constant pressure;

Convert J to kJ to get

$2428cancel("J") * (10^(-3)"kJ")/(1cancel("J")) = "2.428 kJ"$

Since you're dealing with 1 mole, you can write

$DeltaH = color(green)(-"2.428 kJ/mol")$

Now use this equation to determine $DeltaE$

$DeltaE = q + w$

$DeltaE = -"2.428 kJ" + (-"6 kJ") = color(green)(-"8.428 kJ")$

SIDE NOTE I'll leave the rounding to the correct number of sig figs to you.