Investigation and optimization of battery thermal management system based on composite phase change material and variable wall liquid cooling plate

Q1 Chemical Engineering
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引用次数: 0

Abstract

To mitigate the risk of thermal runaway in lithium-ion batteries, an efficient battery thermal management system (BTMS) assumes paramount importance. A BTMS based on composite phase change material (CPCM) and variable wall liquid cooling plate (LCP) is proposed in this research. The numerical model of the BTMS was established and experimentally validated. The influence of the wall of LCP on battery temperature was investigated, and the efficiency of phase change material (EOP) index was proposed to assess the efficacy of CPCM. The genetic algorithm was employed to optimize the structure of the CPCM, and the influence of flow rate on the maximum temperature of the battery pack was studied. The results demonstrate a reduction of 1.81 °C in the maximum temperature of the battery pack upon implementation of the variable wall LCP. The optimized EOP achieves a value of 0.07 °C/g, resulting in a temperature difference of 0.56 °C. Furthermore, maintaining the maximum temperature of the battery pack below 40 °C only requires a water flow rate greater than 0.89 g/s. These results can serve as a valuable reference for the development of battery thermal management systems utilizing CPCM and liquid-cooling.
基于复合相变材料和变壁液体冷却板的电池热管理系统的研究与优化
为了降低锂离子电池热失控的风险,高效的电池热管理系统(BTMS)至关重要。本研究提出了一种基于复合相变材料(CPCM)和可变壁液体冷却板(LCP)的 BTMS。建立了 BTMS 的数值模型,并进行了实验验证。研究了 LCP 壁对电池温度的影响,并提出了相变材料效率(EOP)指标来评估 CPCM 的功效。采用遗传算法优化了 CPCM 的结构,并研究了流量对电池组最高温度的影响。结果表明,采用可变壁 LCP 后,电池组的最高温度降低了 1.81 °C。优化后的 EOP 值为 0.07 °C/g,温差为 0.56 °C。此外,将电池组的最高温度保持在 40 °C 以下只需要大于 0.89 g/s 的水流量。这些结果可作为利用 CPCM 和液冷技术开发电池热管理系统的宝贵参考。
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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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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