Heat transfer characteristics of liquid cooling system for lithium-ion battery pack

Jiawei Zhao, Wei Du, Honglin Xiang, Lei Gu
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Abstract

To improve the thermal uniformity of power battery packs for electric vehicles, three different cooling water cavities of battery packs are researched in this study: the series one-way flow corrugated flat tube cooling structure (Model 1), the series two-way flow corrugated flat tube cooling structure (Model 2), and the parallel sandwich cooling structure (Model 3). Based on the fluid-solid coupling method, this study analyzes the cooling performance of the three models, including thermal uniformity, heat dissipation, and pressure loss. At a high discharge rate, compared with the series cooling system, the parallel sandwich cooling system makes the average temperature and maximum temperature of the battery pack decrease by 26.2% and 26.9% respectively, and the battery pack temperature difference decreases by 62%, and the coolant pressure loss decreases by 95.8%. The results show that the Model 3 overcomes the temperature accumulation caused by the series flow of coolant and achieves a better level of thermal uniformity while improving the heat dissipation and pressure loss performance. The research provides scholars and industries with a reference for upgrading thermal management and improving the stability of the power battery pack for electric vehicles, which has both theoretical and practical significance.
锂离子电池组液体冷却系统的传热特性
为了提高电动汽车动力电池组的热均匀性,本研究对三种不同的电池组冷却水腔进行了研究:串联单向流波纹扁管冷却结构(模型 1)、串联双向流波纹扁管冷却结构(模型 2)和平行夹层冷却结构(模型 3)。本研究基于流固耦合方法,分析了三种模式的冷却性能,包括热均匀性、散热和压力损失。在高放电率下,与串联冷却系统相比,并联夹层冷却系统使电池组的平均温度和最高温度分别降低了 26.2% 和 26.9%,电池组温差降低了 62%,冷却液压力损失降低了 95.8%。结果表明,Model 3 克服了冷却液串联流动造成的温度累积问题,实现了较好的热均匀性,同时改善了散热和压力损失性能。该研究为学者和产业界提升电动汽车动力电池组的热管理水平、提高其稳定性提供了参考,具有理论和实践意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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