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Impact of Cooling Strategies and Cell Housing Materials on Lithium-Ion Battery Thermal Management Performance

Author

Listed:
  • Sevgi Aydın

    (Department of Mechanical Engineering, Kocaeli University, 41001 Izmit, Turkey
    Ford Otosan İstanbul Plants, 34885 Istanbul, Turkey)

  • Umut Ege Samancıoğlu

    (Department of Mechanical Engineering, Izmir Institute of Technology, 35433 Urla, Turkey)

  • İsmail Hakkı Savcı

    (Ford Otosan İstanbul Plants, 34885 Istanbul, Turkey)

  • Kadri Süleyman Yiğit

    (Department of Mechanical Engineering, Kocaeli University, 41001 Izmit, Turkey)

  • Erdal Çetkin

    (Department of Mechanical Engineering, Izmir Institute of Technology, 35433 Urla, Turkey)

Abstract

The transition to renewable energy sources from fossil fuels requires that the harvested energy be stored because of the intermittent nature of renewable sources. Thus, lithium-ion batteries have become a widely utilized power source in both daily life and industrial applications due to their high power output and long lifetime. In order to ensure the safe operation of these batteries at their desired power and capacities, it is crucial to implement a thermal management system (TMS) that effectively controls battery temperature. In this study, the thermal performance of a 1S14P lithium-ion battery module composed of cylindrical 18650 cells was compared for distinct cases of natural convection (no cooling), forced air convection, and phase change material (PCM) cooling. During the tests, the greatest temperatures were reached at a 2C discharge rate; the maximum module temperature reached was 55.4 °C under the natural convection condition, whereas forced air convection and PCM cooling reduced the maximum module temperature to 46.1 °C and 52.3 °C, respectively. In addition, contacting the battery module with an aluminum mass without using an active cooling element reduced the temperature to 53.4 °C. The polyamide battery housing (holder) used in the module limited the cooling performance. Thus, simulations on alternative materials document how the cooling efficiency can be increased.

Suggested Citation

  • Sevgi Aydın & Umut Ege Samancıoğlu & İsmail Hakkı Savcı & Kadri Süleyman Yiğit & Erdal Çetkin, 2025. "Impact of Cooling Strategies and Cell Housing Materials on Lithium-Ion Battery Thermal Management Performance," Energies, MDPI, vol. 18(6), pages 1-18, March.
  • Handle: RePEc:gam:jeners:v:18:y:2025:i:6:p:1379-:d:1609815
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    References listed on IDEAS

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    1. Van-Tinh Huynh & Kyoungsik Chang & Sang-Wook Lee, 2023. "Numerical Investigation of the Thermal Performance of a Hybrid Phase Change Material and Forced Air Cooling System for a Three-Cell Lithium-Ion Battery Module," Energies, MDPI, vol. 16(24), pages 1-19, December.
    2. Liang Xu & Shanyi Wang & Lei Xi & Yunlong Li & Jianmin Gao, 2024. "A Review of Thermal Management and Heat Transfer of Lithium-Ion Batteries," Energies, MDPI, vol. 17(16), pages 1-36, August.
    3. Ahmed Mahmood & Timothy Cockerill & Greg de Boer & Jochen Voss & Harvey Thompson, 2024. "Heat Transfer Modeling and Optimal Thermal Management of Electric Vehicle Battery Systems," Energies, MDPI, vol. 17(18), pages 1-26, September.
    4. Hyeonchang Jeon & Seokmoo Hong & Jinwon Yun & Jaeyoung Han, 2023. "Cooling Strategy Optimization of Cylindrical Lithium-Ion Battery Pack via Multi-Counter Cooling Channels," Energies, MDPI, vol. 16(23), pages 1-30, November.
    5. Jianhao Gu & Jiajie Du & Yuxin Li & Jinpei Li & Longfei Chen & Yan Chai & Yongli Li, 2023. "Preparation and Characterization of n-Octadecane@SiO 2 /GO and n-Octadecane@SiO 2 /Ag Nanoencapsulated Phase Change Material for Immersion Cooling of Li-Ion Battery," Energies, MDPI, vol. 16(3), pages 1-16, February.
    6. Kaixuan Li & Chen Sun & Mingjie Zhang & Shuping Wang & Bin Wei & Yifeng Cheng & Xing Ju & Chao Xu, 2024. "A Study of the Thermal Management and Discharge Strategies of Lithium-Ion Batteries in a Wide Temperature Range," Energies, MDPI, vol. 17(10), pages 1-25, May.
    7. Jiadian Wang & Dongyang Lv & Haonan Sha & Chenguang Lai & Junxiong Zeng & Tieyu Gao & Hao Yang & Hang Wu & Yanjun Jiang, 2024. "Numerical Investigation on the Thermal Performance of a Battery Pack by Adding Ribs in Cooling Channels," Energies, MDPI, vol. 17(17), pages 1-24, September.
    8. Ghazal, Mohammed & Akmal, Muhammad & Iyanna, Shilpa & Ghoudi, Kilani, 2016. "Smart plugs: Perceived usefulness and satisfaction: Evidence from United Arab Emirates," Renewable and Sustainable Energy Reviews, Elsevier, vol. 55(C), pages 1248-1259.
    9. Ting Quan & Qi Xia & Xiaoyu Wei & Yanli Zhu, 2024. "Recent Development of Thermal Insulating Materials for Li-Ion Batteries," Energies, MDPI, vol. 17(17), pages 1-37, September.
    10. Francesco Conte & Marco Giallongo & Daniele Kaza & Gianluca Natrella & Ryohei Tachibana & Shinji Tsuji & Federico Silvestro & Giovanni Vichi, 2024. "Experimental Validation of Electrothermal and Aging Parameter Identification for Lithium-Ion Batteries," Energies, MDPI, vol. 17(10), pages 1-30, May.
    11. Chen-Lung Wang & Jik Chang Leong, 2024. "Analysis of Thermal Management Strategies for 21700 Lithium-Ion Batteries Incorporating Phase Change Materials and Porous Copper Foam with Different Battery Orientations," Energies, MDPI, vol. 17(7), pages 1-27, March.
    12. Hwang, Foo Shen & Confrey, Thomas & Reidy, Colin & Picovici, Dorel & Callaghan, Dean & Culliton, David & Nolan, Cathal, 2024. "Review of battery thermal management systems in electric vehicles," Renewable and Sustainable Energy Reviews, Elsevier, vol. 192(C).
    13. Jaguemont, J. & Boulon, L. & Dubé, Y., 2016. "A comprehensive review of lithium-ion batteries used in hybrid and electric vehicles at cold temperatures," Applied Energy, Elsevier, vol. 164(C), pages 99-114.
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