Investigation of Heat Transfer Enhancement Techniques on a Scalable Novel Hybrid Thermal Management Strategy for Lithium-Ion Battery Packs

Seham Shahid, M. Agelin-chaab
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Abstract

This paper introduces a novel hybrid thermal management strategy, which uses secondary coolants (air and fluid) to extract heat from a phase change material (paraffin), resulting in an increase in the phase change material’s heat extraction capability and the battery module’s overall thermal performance. A novel cold plate design is developed and placed between the rows and columns of the cells. The cold plate contains a single fluid body to improve the thermal performance of the battery module. Experimental studies were conducted to obtain the temperature and heat flux profiles of the battery module. Moreover, a numerical model is developed and validated using the experimental data obtained. The numerical data stayed within ±2% of the experimental data. In addition, the ability of nanoparticles to increase the thermal conductivity of water is examined and it is found that the cooling from the liquid cooling component is not sensitive enough to capture the 0.32 W/m K increase in the thermal conductivity of the fluid. Furthermore, in order to enhance the air cooling, fins were added within the air duct to the cold plate. However, this is not feasible, as the pressure drop through the addition of the fins increased by ~245%, whereas the maximum temperature of the battery module reduced by only 0.6 K. Finally, when scaled up to an entire battery pack at a high discharge rate of 7 C, the numerical results showed that the overall temperature uniformity across the pack was 1.14 K, with a maximum temperature of 302.6 K, which was within the optimal operating temperature and uniformity ranges. Therefore, the developed thermal management strategy eliminates the requirement of a pump and reservoir and can be scaled up or down according to the energy and power requirements.
锂离子电池组可扩展新型混合热管理策略的热传导增强技术研究
本文介绍了一种新型混合热管理策略,该策略利用二次冷却剂(空气和流体)从相变材料(石蜡)中提取热量,从而提高相变材料的热提取能力和电池模块的整体热性能。我们开发了一种新颖的冷板设计,并将其置于电池行和列之间。冷板包含单个流体,以提高电池模块的热性能。实验研究获得了电池模块的温度和热通量曲线。此外,还开发了一个数值模型,并利用获得的实验数据进行了验证。数值数据保持在实验数据的 ±2% 范围内。此外,还研究了纳米颗粒增加水热导率的能力,发现液体冷却组件的冷却不够灵敏,无法捕捉到流体热导率增加的 0.32 W/m K。此外,为了加强空气冷却,在冷板的空气管道内增加了翅片。最后,在 7 摄氏度的高放电率下,当放大到整个电池组时,数值结果显示整个电池组的整体温度均匀性为 1.14 K,最高温度为 302.6 K,处于最佳工作温度和均匀性范围内。因此,所开发的热管理策略无需使用泵和蓄水池,并可根据能量和功率要求进行放大或缩小。
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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