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Question 6
Methanol, CH3OH(l), undergoes combustion according to the equation 2CH3OH(l) + 3O2(g) → 2CO2(g) + 4H2O(g) In an experiment to determine its suitability as a fuel, ... show full transcript
Step 1
Answer
To calculate the calibration constant, we first need to find the energy supplied to the calorimeter using the formula:
Where:
Now, substituting the values into the formula:
Next, we can find the calibration constant using the formula:
Where:
Now substituting these values:
Step 2
Answer
To find ΔH for the combustion of methanol, we need to use the calorimeter constant we just calculated, along with the temperature change observed when combusting the methanol.
The energy released during the combustion is calculated using:
Where:
Calculating energy:
Next, to calculate the molar heat of combustion, we need to divide the energy by the number of moles of methanol burned.
First, calculate the moles of methanol:
Now we calculate ΔH:
Thus, the value of ΔH for the combustion of methanol is approximately 705.47 kJ/mol.
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