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Thermal management of a LiFePO4 battery pack at high temperature environment using a composite of phase change materials and aluminum wire mesh plates

机译:使用相变材料和铝丝网板的复合材料在高温环境下对LiFePO4电池组进行热管理

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摘要

One of the most significant factors affecting the performance and life cycle of lithium-ion batteries is temperature. During the charging and discharging processes a large amount of heat is continuously generated inside the cells causing an increase in surface temperature which results life time deterioration to the pack's performance and power supply and in severe conditions causing an explosion inside the car especially in the hot temperature regions. In this study a composite of a phase change material and aluminum wire mesh plates has been used for the thermal management system of LiFePO4 pack to control the temperature rise of the batteries at high temperature regions (50-55 degrees C). Poly Ethylene Glycol 1000 (PEG1000) with melting point of 35-40 degrees C has been used as a phase change material. Aluminum wire mesh plates have been applied to the PCM for thermal conductivity enhancement and also to improve the temperature uniformity of the system. Preliminary experimental runs have been performed in charge and discharge of the batteries at different rates of 1-3 C to obtain the maximum surface temperature of the cells. Due to the page limit of the manuscript, only the discharge results are presented here. A mathematical model has been developed for one of the cells in COMSOL ver. 5.1 and the results of the model have been verified by the experimental data obtained at different conditions. The results show that using the PCM and aluminum wire mesh plates between the cells can reduce the surface temperature significantly and causes better performance for the battery pack. The maximum cell surface temperatures at ambient temperature condition have been reduced by 19%, 21%, and 26% for the rates of 1 C, 2 C, and 3 C respectively. (C) 2016 Elsevier Ltd. All rights reserved.
机译:温度是影响锂离子电池性能和寿命周期的最重要因素之一。在充电和放电过程中,电池内部会不断产生大量热量,从而导致表面温度升高,这会导致电池组性能和电源的使用寿命降低,并且在严酷的条件下尤其是在高温下会导致汽车内部爆炸地区。在这项研究中,相变材料和铝丝网板的复合材料已用于LiFePO4电池组的热管理系统,以控制高温区域(50-55摄氏度)下电池的温度升高。熔点为35-40℃的聚乙二醇1000(PEG1000)已被用作相变材料。铝丝网板已应用于PCM,以提高热导率,并改善系统的温度均匀性。已经以1-3℃的不同速率对电池进行了充电和放电的初步实验,以获得电池的最高表面温度。由于手稿的页数限制,此处仅显示放电结果。已为COMSOL ver。中的一个单元开发了数学模型。通过在不同条件下获得的实验数据验证了5.1和模型的结果。结果表明,在电池之间使用PCM和铝丝网板可以显着降低表面温度,并为电池组带来更好的性能。对于1 C,2 C和3 C的速率,在环境温度条件下的最大电池表面温度分别降低了19%,21%和26%。 (C)2016 Elsevier Ltd.保留所有权利。

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