Answer:
-63.79 kJ/g
Explanation:
According to the law of conservation of energy, the sum of the heat released by the combustion of the new organic material (Qcomb) and the heat absorbed by the bomb calorimeter (Qbc) is zero.
Qcomb + Qbc = 0
Qcomb = -Qbc [1]
We can calculate the heat absorbed by the bomb calorimeter using the following expression.
Qbc = C × ΔT
where,
Qbc = C × ΔT
Qbc = 28.81 kJ/°C × (30.28°C - 24.91°C) = 154.7 kJ
From [1],
Qcomb = -154.7 kJ
The heat of combustion per gram of the material is:
-154.7 kJ / 2.425 g = -63.79 kJ/g
Answer:
The heat of combustion per gram of the material is -63.8 kJ/ gram
Explanation:
Step 1: Data given
Mass of a ew organic material = 2.425 grams
The initial temperature of the calorimeter = 24.91 °C
The final temperature of the calorimeter = 30.28 °C
The heat capacity (calorimeter constant) of the calorimeter is 28.81 kJ /°C
Step 2: Calculate heat
Q = c*ΔT
⇒with c = the heat capacity (calorimeter constant) of the calorimeter is 28.81 kJ /°C
⇒with ΔT = The change of temperature = T2 - T1 = 30.28 - 24.91 = 5.37 °C
Q = 28.81 kJ/ °C * 5.37 °C
Q = 154.7 kJ
Step 3: Calculate the heat of combustion per gram of the material
heat of combustion per gram = -Q / mass (negative since it's exothermic)
heat of combustion per gram = -154.7 kJ / 2.425 grams
heat of combustion per gram = -63.8 kJ/ gram
The heat of combustion per gram of the material is -63.8 kJ/ gram
