What is the molar heat of combustion when $25000 g$ $"25000 g"$ of methanol is combusted in a bomb calorimeter to raise the temperature of the surrounding water by $40^{\circ} C$ $40^@ "C"$ if the heat capacity of the calorimeter is ${10.4 kJ/}^{\circ} C$ $"10.4 kJ/"^@ "C"$ ?

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What is the molar heat of combustion when $25000 g$ $"25000 g"$ of methanol is combusted in a bomb calorimeter to raise the temperature of the surrounding water by $40^{\circ} C$ $40^@ "C"$ if the heat capacity of the calorimeter is ${10.4 kJ/}^{\circ} C$ $"10.4 kJ/"^@ "C"$ ?

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Answer 1 · 2017-07-03T19:48:49

There's probably an error in this question... I get $- 0.5331 kJ/mol$ $-"0.5331 kJ/mol"$ , which is about 1000 times smaller than it should be.

Since we are in a bomb calorimeter, a constant-volume calorimeter, we have from the first law of thermodynamics:

$q_V = DeltaU + cancel(PDeltaV)^(0)$ ,

where:

$q_V$ is the heat flow at constant volume.

$DeltaU$ is the change in internal energy.

The work done, $-PDeltaV$ , is defined here as the system doing work with respect to the surroundings.

Since we know the change in temperature and the combined heat capacity (presumably in $"kJ/"^@ "C"$ ...), we can find the heat involved in the reaction:

$|q_V| = C_VDeltaT$

$= "10.4 kJ/"^@ "C" xx 40^@ "C"$

$=$ $"416 kJ"$

I interpret the molar heat of combustion to be $DeltabarU_C$ , rather than the change in enthalpy (since the process is at constant volume, and we aren't given the volume of the calorimeter or water).

$DeltabarU_C = q_V/n_(LR)$ ,

where $n_(LR)$ is the mols of the limiting reactant, i.e. the methanol in the presence of oxygen.

Assuming complete combustion:

$2"CH"_3"OH"(g) + 3"O"_2(g) -> 4"H"_2"O"(g) + 2"CO"_2(g)$

The molar internal energy of combustion is then the heat released out from the reaction towards the surrounding water:

$color(blue)(DeltabarU_C) = -("416 kJ")/(25000 cancel("g CH"_3"OH")) xx (32.04 cancel("g CH"_3"OH"))/"1 mol"$

$=$ $color(blue)(-"0.5331 kJ/mol")$

This is an absurdly low number, so there's something off with the data... Are you sure it isn't $"25.000 g"$ ? The heat of combustion is off by over 1000 times.

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What is the molar heat of combustion when $25000 g$ $"25000 g"$ of methanol is combusted in a bomb calorimeter to raise the temperature of the surrounding water by $40^{\circ} C$ $40^@ "C"$ if the heat capacity of the calorimeter is ${10.4 kJ/}^{\circ} C$ $"10.4 kJ/"^@ "C"$ ?

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What is the molar heat of combustion when $25000 g$ $"25000 g"$ of methanol is combusted in a bomb calorimeter to raise the temperature of the surrounding water by $40^{\circ} C$ $40^@ "C"$ if the heat capacity of the calorimeter is ${10.4 kJ/}^{\circ} C$ $"10.4 kJ/"^@ "C"$ ?