Energy Storage Science and Technology ›› 2025, Vol. 14 ›› Issue (5): 1866-1874.doi: 10.19799/j.cnki.2095-4239.2024.1056

• Energy Storage Materials and Devices • Previous Articles     Next Articles

Simulation of immersion thermal performance regulation and thermal safety experimental study for energy storage lithium batteries

Haiyang ZHOU1(), Zhendong ZHANG1(), Lei SHENG1, Zehua ZHU1, Xiaojun ZHANG2, Chunfeng ZHANG2   

  1. 1.School of Mechanical Engineering, Shanghai University of Technology, Shanghai 200093, China
    2.Shanxi Lu'an Taihang Lubricant Co. , Ltd. , Changzhi 046011, Shanxi, China
  • Received:2024-11-11 Revised:2024-12-11 Online:2025-05-28 Published:2025-05-21
  • Contact: Zhendong ZHANG E-mail:z_hy980926@163.com;usstzzd@usst.edu.cn

Abstract:

To address the challenges of temperature rise and excessive temperature differences during the operation of a 5 kWh household storage battery plug-in box, a submerged inner tank model was designed. The model allows the batteries to be directly immersed in a cooling medium, while maintaining electrical connectivity to an external battery pack. The study investigated how battery spacing, immersion height ratio, and discharge rate impact cooling performance during static immersion in the inner tank. In addition, the thermal safety performance of the model was experimentally analyzed. Results revealed that a battery spacing of 2.5 mm significantly improves temperature uniformity within the battery module. Optimal cooling performance was achieved when the batteries were 100% submerged. Discharging the fully immersed battery module at 0.5 C, 1.0 C, and 1.5 C notably reduced the maximum temperature compared to non-immersed conditions, while also greatly improving temperature uniformity. Subsequently, the accuracy of the conventional liquid cooling model was verified through experiments, with the simulation results closely aligning with experimental data, showing a maximum deviation of only 1.29 ℃. Finally, overcharge thermal runaway diffusion experiments demonstrated that this cooling method effectively suppresses the spread of thermal runaway.

Key words: lithium-ion battery, immersion thermal management, numerical simulation, thermal propagation suppression

CLC Number: