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Journal of Automotive Safety and Energy ›› 2025, Vol. 16 ›› Issue (4): 568-576.DOI: 10.3969/j.issn.1674-8484.2025.04.007

• Automotive Energy Efficiency and Environment Protection • Previous Articles     Next Articles

Optimized design of wind-liquid double cycle for lithium-ion battery system in energy storage power station

LIU Jinyi1(), WANG Yan1,2,*(), PANG Yingjie1, YU Ruiguang1, MOU Ruitao1, LU Languang2, LI Yalun2, WANG Hewu2, ZHANG Lilei3, LI Mingming3   

  1. 1 College of Mechanical and Automotive Engineering, Qingdao University of Science and Technology, Qingdao 266520, China
    2 National Key Laboratory of Intelligent Green Vehicles and Transportation (formerly State Key Laboratory of Automotive Safety and Energy Conservation), Tsinghua University, Beijing 100080, China
    3 Yantai Creating New Energy Technology Co., LTD., Yantai 264006, China
  • Received:2024-12-23 Revised:2025-02-24 Online:2025-08-30 Published:2025-08-27

Abstract:

A thermal management system with dual air-liquid circulation was proposed based on the temperature homogeneity control and the dynamic temperature difference regulation to enhance the temperature uniformity in lithium-ion battery systems for energy storage power stations. The system utilized air cooling under low-to-medium temperature conditions to combined air-liquid cooling in high-temperature environments. Simulation experiments investigated 4 control parameters including the air volume, the air temperature, the coolant temperature, and the coolant flow rate. The heat exchange structure was optimized through 1D-3D co-simulations to analyzing the significance of temperature rise and the uniformity of performance parameters. The results show that under twice the rated high-power discharge, the proposed system reduces the end-of-discharge temperature difference by 18% compared to the conventional bottom cold plate structures. A 300 s air supply cycle achieves a 31% reduction in the temperature difference (of 1.18 °C) versus a 100 s cycle. Parameter sensitivity decreases in the order as the air temperature, the air volume, the coolant temperature, and the coolant flow rate. Therefore, the dual air-liquid circulation design enhances dynamic temperature difference control with extending the service life of energy storage battery systems.

Key words: energy storage power stations, lithium-ion battery systems, battery thermal management, one-dimensional/three-dimensional joint simulation, temperature uniformity

CLC Number: