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Design of the cell spacings of battery pack in parallel air-cooled battery thermal management system

机译:并联风冷电池热管理系统中电池组电池间距的设计

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In this paper, the cooling performance of the parallel air-cooled Battery Thermal Management System (BTMS) is improved through designing the spacing distribution among the battery cells. Computational Fluid Dynamics (CFD) method is employed to calculate the flow field and the temperature field of the BTMS. Then an optimization strategy combined with the CFD method is used to adjust the cell spacings, with the target of minimizing the maximum cell temperature difference. Typical cases are used to test the effectiveness of the proposed optimization process for cell spacing optimization. The results indicate that the maximum temperature of the battery pack is reduced by approximately 3.0 K and the maximum cell temperature difference is reduced by more than 60% after optimizing the cell spacing distribution. By choosing appropriate initial cell spacing distribution and step length of the cell spacing adjustments, optimized results can be obtained in short time without sacrificing the performance of the solution. Furthermore, the cell spacing optimization does not increase the total power consumption, and the optimized BTMS achieves good cooling performance for various inlet airflow rates. It is suggested that the presented optimization process is an effective method to design the cell spacing distribution and to improve the cooling performance of the BTMS. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过设计电池单元之间的间距分布,可以改善并联风冷式电池热管理系统(BTMS)的冷却性能。计算流体动力学(CFD)方法用于计算BTMS的流场和温度场。然后,结合CFD方法的优化策略用于调整单元格间距,以最大程度地减小最大单元格温差为目标。典型案例用于测试所建议的优化过程对像元间距优化的有效性。结果表明,在优化电池单元间距分布之后,电池组的最高温度降低了约3.0 K,最大电池单元温差降低了60%以上。通过选择适当的初始像元间距分布和像元间距调整的步长,可以在不牺牲解决方案性能的情况下在短时间内获得优化结果。此外,单元间距优化不会增加总功耗,并且优化的BTMS在各种进气流量下均具有良好的冷却性能。建议提出的优化过程是设计单元间距分布并提高BTMS冷却性能的有效方法。 (C)2018 Elsevier Ltd.保留所有权利。

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