Research Article

The impact of electrode design parameters on the thermal behavior of a lithium-ion battery

Volume: 11 Number: 4 July 31, 2025
  • Ahmed F. Al-neama
  • Harvey Thompson

The impact of electrode design parameters on the thermal behavior of a lithium-ion battery

Abstract

The main objective of this study is to develop an accurate simulation methodology for the temperatures in cylindrical lithium-ion batteries (LiBs), while they are being continuously charged and discharged, that can be used to ensure they remain within safe operating limits. A comprehensive 3D simulation methodology for air-cooled cylindrical LiBs is developed and applied to the specific case of an 18650-type NMC LiB. The battery cell chemistry is modelled using a Pseudo 2D electrochemical model, while the temperature within the battery is represented using a 3D axisymmetric heat transfer model. The electrochemical and thermal behaviours are modelled by coupling the heat source produced from the electrochemical model with the average temperature from the thermal model. This study’s key novelty lies in its detailed investigation into how multiple electrode design parameters affect the LiB’s thermal characteristics. To verify the model’s accuracy, the simulation outcomes are compared with experimental data on discharge voltage and surface temperature of LiBs at different discharge rates, and good agreement is obtained. The model is then used to explore the impacts of the electrode thickness, positive electrode particle size, charge-discharge rate (C-rate) and inlet airflow velocity on battery thermal behaviour. The numerical results revealed that increasing the C-rate, electrode thickness, and positive electrode particle size increases the LiBs’ temperature rise rate; however, increasing inlet airflow velocity reduces the temperature rise of the battery cell. At inlet airflow velocity of 0.1 m/s, the maximum temperature roughly increases by 31.7 o C (at 6 C-rate) compared to the 1 C-rate case. At 4 C-rate and inlet airflow velocity of 0.2 m/s, the numerical results predict that increasing the negative electrode thickness from 25 to 70 µm increased the maximum temperature from 31.8 to 48.1 o C, while raising positive electrode particle size from 1 to 7 µm increased the maximum temperature from 32.06 o C to 38.74 o C (at time of 2000 s). The research method and conclusions can provide valuable references for further research on the thermal characteristics of the LiB.

Keywords

References

  1. [1] Malima GC, Moyo F. Are electric vehicles economically viable in sub-Saharan Africa? The total cost of ownership of internal combustion engine and electric vehicles in Tanzania. Transport Policy 2023;141:14–26. [CrossRef]
  2. [2] Yang Z, Yan Y, Pak U. Thermal reliability assessment and sensitivity analysis of 18,650 cylindrical lithium-ion battery. J Energy Storage 2023;59:106504. [CrossRef]
  3. [3] Tanim TR, Rahn CD, Wang CY. State of charge estimation of a lithium ion cell based on a temperature dependent and electrolyte enhanced single particle model. Energy 2015;80:731–739. [CrossRef]
  4. [4] He CX, Yue QL, Wu MC, Chen Q, Zhao TS. A 3D electrochemical-thermal coupled model for electrochemical and thermal analysis of pouch-type lithium-ion batteries. Intern J Heat Mass Transf 2021;181:121855. [CrossRef]
  5. [5] Zhang Z, Yu W, Li H, Wan W, Zhang W, Zhuo W et al. Heat transfer characteristics and low-temperature performance of a lithium-ion battery with an inner cooling/heating structure. App Therm Eng 2023;219:119352. [CrossRef]
  6. [6] Feng X, Zheng S, Ren D, He X, Wang L, Cui H et al. Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database. App Energy 2019;246:53–64. [CrossRef]
  7. [7] Lu Y, Rong X, Hu YS, Chen L, Li H. Research and development of advanced battery materials in China. Energy Storag Mater 2019;23:144–153. [CrossRef]
  8. [8] Liu Q, Qin L, Shi Q, Yao X, Xu C, Ju X. Optimization of the active battery immersion cooling based on a self-organized fluid flow design. J Energy Storag 2024;76:109851. [CrossRef]

Details

Primary Language

English

Subjects

Aerodynamics (Excl. Hypersonic Aerodynamics)

Journal Section

Research Article

Authors

Ahmed F. Al-neama This is me
0000-0003-3740-7157
Iraq

Harvey Thompson This is me
0000-0002-0493-1131
United Kingdom

Publication Date

July 31, 2025

Submission Date

May 14, 2024

Acceptance Date

August 20, 2024

Published in Issue

Year 2025 Volume: 11 Number: 4

APA
Al-neama, A. F., & Thompson, H. (2025). The impact of electrode design parameters on the thermal behavior of a lithium-ion battery. Journal of Thermal Engineering, 11(4), 1011-1023. https://doi.org/10.14744/thermal.0000966
AMA
1.Al-neama AF, Thompson H. The impact of electrode design parameters on the thermal behavior of a lithium-ion battery. Journal of Thermal Engineering. 2025;11(4):1011-1023. doi:10.14744/thermal.0000966
Chicago
Al-neama, Ahmed F., and Harvey Thompson. 2025. “The Impact of Electrode Design Parameters on the Thermal Behavior of a Lithium-Ion Battery”. Journal of Thermal Engineering 11 (4): 1011-23. https://doi.org/10.14744/thermal.0000966.
EndNote
Al-neama AF, Thompson H (July 1, 2025) The impact of electrode design parameters on the thermal behavior of a lithium-ion battery. Journal of Thermal Engineering 11 4 1011–1023.
IEEE
[1]A. F. Al-neama and H. Thompson, “The impact of electrode design parameters on the thermal behavior of a lithium-ion battery”, Journal of Thermal Engineering, vol. 11, no. 4, pp. 1011–1023, July 2025, doi: 10.14744/thermal.0000966.
ISNAD
Al-neama, Ahmed F. - Thompson, Harvey. “The Impact of Electrode Design Parameters on the Thermal Behavior of a Lithium-Ion Battery”. Journal of Thermal Engineering 11/4 (July 1, 2025): 1011-1023. https://doi.org/10.14744/thermal.0000966.
JAMA
1.Al-neama AF, Thompson H. The impact of electrode design parameters on the thermal behavior of a lithium-ion battery. Journal of Thermal Engineering. 2025;11:1011–1023.
MLA
Al-neama, Ahmed F., and Harvey Thompson. “The Impact of Electrode Design Parameters on the Thermal Behavior of a Lithium-Ion Battery”. Journal of Thermal Engineering, vol. 11, no. 4, July 2025, pp. 1011-23, doi:10.14744/thermal.0000966.
Vancouver
1.Ahmed F. Al-neama, Harvey Thompson. The impact of electrode design parameters on the thermal behavior of a lithium-ion battery. Journal of Thermal Engineering. 2025 Jul. 1;11(4):1011-23. doi:10.14744/thermal.0000966

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