Answer
🧪 Calorimetry Experiment Analysis
Objective
To determine:
- The calorimeter constant (Ccal)
- The heat of neutralization (ΔHneut) for the reaction between HCl and Ca(OH)2
A. Calorimeter Constant
1. Reaction Used
2HCl + Ca(OH)2 → CaCl2 + 2H2O
2. Given Data
- Mass of CaCO3: 8.0 g
- Molar Mass of CaCO3: 110.98 g/mol
- ΔH (reaction): −81.3 kJ/mol
- Tinitial: 25°C, Tfinal: 45°C (ΔT = 20°C)
3. Calculations
Moles of CaCO3: n = 8.0 g / 110.98 g/mol ≈ 0.0721 mol
Heat Released: q = n × ΔH = 0.0721 mol × (−81.3 kJ/mol) ≈ −5860 J
Calorimeter Constant: C = q / ΔT = −5860 J / 20°C = −293 J/°C
B. Heat of Neutralization
- Tinitial: 25°C
- Tfinal: 53°C → ΔT = 28°C
- Ccal: 293 J/°C
Heat Released: q = C × ΔT = 293 J/°C × 28°C = 8204 J = 8.2 kJ
Moles of HCl: n = M × V = 2.0 mol/L × 0.050 L = 0.1 mol
Heat of Neutralization: ΔHneut = q / n = −8.2 kJ / 0.1 mol = −82 kJ/mol
✅ Final Results
| Parameter | Value |
|---|---|
| Calorimeter Constant (Ccal) | 293 J/°C |
| Heat of Neutralization (ΔHneut) | −82 kJ/mol |
Conclusion
The experiment successfully determined the heat capacity of the calorimeter and the enthalpy change during neutralization. The values obtained are consistent with known theoretical expectations for strong acid–strong base reactions.