A Novel Method for Determining the Specific Heat Capacity of Cylindrical Li-Ion Batteries
Abstract
1. Introduction
2. Materials and Methods
2.1. Determination of Specific Heat Capacity
2.2. Temperature Loss Correction
3. Experimental Procedure
4. Results and Discussion
5. Validation
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Methodology | Core Principle/Equipment | Accuracy/Uncertainty | Experimental Duration | Equipment Cost | Procedural Complexity |
|---|---|---|---|---|---|
| Balkur et al. (2021) [40] | External flexible heating element and Styrofoam insulation | High (≈±2.0–3.0% under strict control) | Moderate to High (requires thermal equilibrium setup) | Low (uses inexpensive heaters and insulation) | Moderate (requires meticulous surface wrapping and contact-resistance calibration) |
| Zhang et al. (2019) [41] | Lumped capacitance method/Laboratory oven and IR Camera | Moderate (≈±6.0%) | High (requires separate heating and cooling phases) | Low to Moderate (standard oven and IR camera) | High (destructive; requires cell disassembly and jellyroll removal) |
| He et al. (2022) [42] | External heating pads and Forced convection via axial fans (pp. 2, 5) | High | High (requires extended heating phases to reach steady state) (p. 5) | Low to Moderate (uses conventional laboratory power supplies) (pp. 1, 5) | High (mandates multi-stage steady-state balance and stable airflow) (p. 5) |
| Faber et al. (2023) [49] | Thermal transients through insulation/Dual environmental chambers | High | Very High (thermal soaking required) | High (requires precise and energy-intensive climate chambers) | Moderate (demands stringent calibration of the insulation layers) |
| Battery | Cp(E1), J/Kg·°C | Cp(E2), J/Kg·°C | Cp(E3), J/Kg·°C | Cp(E4), J/Kg·°C | Cp(E5), J/Kg·°C | Mean Value | Standard Deviation | 95% CI |
|---|---|---|---|---|---|---|---|---|
| Battery 1 | 996.44 | 963.36 | 978.76 | 995.19 | 953.55 | 977.46 | 19.01 | 953.9–1001.0 |
| Battery 2 | 987.70 | 956.32 | 995.64 | 1035.07 | 1009.19 | 996.78 | 28.9 | 960.9–1032.7 |
| Battery 3 | 934.31 | 983.1 | 917.73 | 909.46 | 953.28 | 939.57 | 29.55 | 902.9–976.3 |
| Battery 4 | 965.50 | 956.9 | 957.41 | 962.20 | 965.51 | 961.5 | 4.19 | 956.3–966.7 |
| Measuring Device | Measurement Range | Resolution | Basic Accuracy | Response Time |
|---|---|---|---|---|
| FLIR A615 | –40 °C to +150 °C | IR resolution 640 × 480 pixels NETD < 0.05 °C | ±2% of reading | |
| HIOKI BT3561 | Voltage 0–6 V Resistance 0–310.00 mΩ | 10 μV 10 μΩ | ±0.01% rdg ± 3 dgt ±0.5% rdg ± 5 dgt | 10 ms 10 ms |
| Teledyne T3EL1500303P | Constant Current Mode 0~30 A Time 200 ms ~999 s | 1 mA 5 ms | ± (0.1% + 0.1%FS) 100 ppm/°C | |
| Teledyne T3PS43203 | Constant Current Operation 0~3 A Line Regulation Load Regulation | ≤0.2% + 3 mA ≤0.2% + 3 mA |
| Input Quantity | Type | Standard Uncertainty | Relative Uncertainty (%) |
|---|---|---|---|
| Repeatability of Cp measurements | A | 9.66 J kg−1 K−1 | 1 |
| Discharge current, I | B | 0.0225 A | 0.25 |
| Voltage measurement, Vt | B | 0.00039 V | 0.056 |
| OCV approximation, VOCV,middle | B | 0.0113 V | 1.61 |
| Pulse duration, t | B | 0.00289 | 0.01 |
| Battery mass, m | B | 5.77 × 10−6 kg | 0.013 |
| Thermal camera noise (NETD) | B | 0.0289 °C | 0.8 |
| Heat-loss correction (polynomial extrapolation) | B | 0.0284 °C | 0.78 |
| Parameter | Value |
|---|---|
| Discharge current | 9 A |
| Pulse duration | 30 s |
| Temperature | 296 K |
| dU/dT | +0.15 mV K−1 |
| Reversible heat Qrev | 12.0 J |
| Irreversible heat Qirr | 150 J |
| Relative contribution Qrev/Qirr | 0.08 |
| Estimated bias in Cp | 0.074 |
| Experiment | Energy Supplied to the Heater, J | Maximum Temperature After Correction, °C | Temperature Correction, °C | Cp, J/Kg·°C |
|---|---|---|---|---|
| 1 | 337.8 | 24.04 | 0.325 | 916.19 |
| 2 | 158 | 18.35 | 0.296 | 910.53 |
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Sotirov, S.; Kafadarova, N. A Novel Method for Determining the Specific Heat Capacity of Cylindrical Li-Ion Batteries. Batteries 2026, 12, 226. https://doi.org/10.3390/batteries12070226
Sotirov S, Kafadarova N. A Novel Method for Determining the Specific Heat Capacity of Cylindrical Li-Ion Batteries. Batteries. 2026; 12(7):226. https://doi.org/10.3390/batteries12070226
Chicago/Turabian StyleSotirov, Sotir, and Nadezhda Kafadarova. 2026. "A Novel Method for Determining the Specific Heat Capacity of Cylindrical Li-Ion Batteries" Batteries 12, no. 7: 226. https://doi.org/10.3390/batteries12070226
APA StyleSotirov, S., & Kafadarova, N. (2026). A Novel Method for Determining the Specific Heat Capacity of Cylindrical Li-Ion Batteries. Batteries, 12(7), 226. https://doi.org/10.3390/batteries12070226

