Energy Storage Science and Technology ›› 2024, Vol. 13 ›› Issue (11): 4177-4186.doi: 10.19799/j.cnki.2095-4239.2024.0566

• Energy Storage Test: Methods and Evaluation • Previous Articles     Next Articles

Research on cooling effect of dual-fluid spray on thermal runaway in lithium batteries: An orthogonal experiment study

Pengjie ZHU1(), Wei LI1(), Chu ZHANG1, Hao SONG1, Beibei LI1, Xiumei LIU1, Lili LIU2   

  1. 1.School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China
    2.Jiangsu Bafang Safety Equipment Limited Company, Xuzhou 221000, Jiangsu, China
  • Received:2024-06-21 Revised:2024-07-16 Online:2024-11-28 Published:2024-11-27
  • Contact: Wei LI E-mail:ts22050217p31@cumt.edu.cn;cmeetechnologylw@163.com

Abstract:

Thermal runaway in lithium batteries is characterized by rapid temperature increases, easy propagation, and complex chemical reactions, making it difficult for conventional fire protection measures to quickly extinguish and cool affected batteries. This study proposes a low-pressure dual-fluid atomization spray fire protection system utilizing CO2 and water, specifically designed for the fire protection and cooling of thermally runaway lithium batteries within liquid-cooled battery packs. The system monitors temperature changes both within the battery pack and individual batteries. An orthogonal experiment was conducted to investigate the influence of dual-fluid spray parameters on the cooling effect of thermally runaway lithium batteries, analyzing the impact of these factors on the results. Experimental findings demonstrate that the dual-fluid spray exhibits excellent diffusion characteristics within the battery pack, effectively cooling the thermally runaway battery located directly beneath the atomizing nozzle. Increased gas pressure, higher water flow rates, and a greater number of nozzle holes enhance droplet diffusion and significantly reduce battery cooling time. Among these factors, the atomizing gas pressure exerts the most significant influence on the experimental outcomes. Under optimal conditions, the dual-fluid spray system rapidly cools thermally runaway batteries to safe temperatures and effectively suppresses further heat propagation. This study's findings indicate that the proposed system surpasses traditional fire protection methods in terms of cost, environmental impact, and cooling effectiveness, presenting a novel solution for designing fire protection systems in energy storage stations and cabinets.

Key words: lithium iron phosphate battery, thermal runaway, dual-fluid, orthogonal experiment, cooling, liquid cooled battery pack

CLC Number: