电动汽车用锂离子电池模组热失控数值模拟

Rama Krisna Desirala, Seeta Ratnam Gunti, Suresh Kukkadapu, S. Patwardhan
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引用次数: 0

摘要

传统汽车的排放是造成环境污染的重要因素之一,因此电动汽车成为未来交通工具的替代选择。电动汽车面临的主要挑战是其能量存储系统,即锂离子电池,它对工作温度极其敏感。高温会导致热失控传播到相邻的电池,最终导致电池组的永久失效。本研究提出了一种新的相变材料(PCM)在电池之间以避免这种不安全的热条件。利用Ansys Fluent对三星21700锂离子圆柱电池模块进行了模型验证,该模块包含63个电芯,配置为9P7S。利用加速量热法测量数据对模型参数进行了标定。研究表明,在没有PCM的情况下,滥用电池的峰值温度达到1040K,热扩散导致热量传递到邻近的电池。当PCM存在时,电池体积平均温度降低约20%,热失控延迟120秒。因此,本研究表明,在电池之间引入PCM是电动汽车锂离子电池组的有效热管理技术之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Modelling of Thermal Runaway for Li-Ion Battery Module For EV Applications
Emissions from conventional vehicles are one of the significant contributors to the environment pollution, so Electrical Vehicles (EV's) become an alternative for future transportation. The major challenge with the EV's is with their energy storage systems, i.e., lithium-ion batteries, which are extremely sensitive to working temperatures. High temperatures cause thermal runaway propagation to the adjacent cells and eventually lead to permanent failure of the battery pack. The present study proposes a new Phase Change Material (PCM) between the cells to avoid such unsafe thermal conditions. Ansys Fluent is used for the model validation for a Samsung 21700 Li-ion cylindrical battery module containing 63 cells with the configuration of 9P7S. The model parameters are calibrated by using the Accelerating Rate Calorimetry measurement data. The study reveals that in the absence of PCM, the peak temperature in the abuse cell reaches to 1040K, and thermal diffusion causes heat transfer to the neighboring cells. When the PCM is present, the cell volume average temperature is reduced by ~20% and the thermal runaway is delayed by 120 seconds. Hence, the present study demonstrates that introducing the PCM between the cells is one of the efficient thermal management techniques for Li-ion battery packs in EV's.
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