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Cooling efficiency improvement of air-cooled battery thermal management system through designing the flow pattern

机译:通过设计流型来提高风冷电池热管理系统的冷却效率

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Air-cooled battery thermal management system (BTMS) is one of the most commonly used solutions to maintain the appropriate temperature of battery pack in electric vehicle. In the present study, the cooling efficiency of the air-cooled BTMS is improved through designing the flow pattern of the system. The BTMSs with various positions of the inlet region and the outlet region are considered. The performances of the systems are evaluated using the numerical method, the effectiveness of which is validated by experiment. The results show that the symmetrical BTMS with the inlet and outlet located on the middle of the plenums achieves high cooling efficiency. Subsequently, an optimization strategy is proposed to optimize the positions of the inlet region and the outlet region for cooling efficiency improvement of the system. It is found that the optimized BTMS has better cooling performance than other BTMSs. Compared to the typical BTMS with Z-type flow, the maximum temperature and the maximum cell temperature difference of the optimized BTMS are reduced by 4.5 K and 7.7 K, respectively. Compared to the symmetrical system, the maximum cell temperature difference of the optimized BTMS is reduced by 1.7 K with the power consumption decreased by 12%. (C) 2018 Elsevier Ltd. All rights reserved.
机译:风冷电池热管理系统(BTMS)是最常用的解决方案之一,可保持电动汽车中电池组的适当温度。在本研究中,通过设计系统的流型来提高风冷BTMS的冷却效率。考虑具有入口区域和出口区域的不同位置的BTMS。通过数值方法对系统的性能进行了评估,并通过实验验证了其有效性。结果表明,对称的BTMS的进口和出口位于气室的中间,可实现较高的冷却效率。随后,提出了一种优化策略来优化入口区域和出口区域的位置,以提高系统的冷却效率。发现优化的BTMS具有比其他BTMS更好的冷却性能。与具有Z型流量的典型BTMS相比,优化后的BTMS的最高温度和最大电池温度差分别降低了4.5 K和7.7K。与对称系统相比,优化的BTMS的最大电池温度差降低了1.7 K,功耗降低了12%。 (C)2018 Elsevier Ltd.保留所有权利。

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