Advanced Thermal Management of Cylindrical Lithium-Ion Battery Packs in Electric Vehicles: A Comparative CFD Study of Vertical, Horizontal, and Optimised Liquid Cooling Designs

Michael Murphy, Mohammad Akrami
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Abstract

Battery packs found in electric vehicles (EVs) require thermal management systems to maintain safe operating temperatures in order to improve device performance and alleviate irregular temperatures that can cause irreversible damage to the cells. Cylindrical lithium-ion batteries are widely used in the electric vehicle industry due to their high energy density and extended life cycle. This report investigates the thermal performance of three liquid cooling designs for a six-cell battery pack using computational fluid dynamics (CFD). The first two designs, vertical flow design (VFD) and horizontal flow design (HFD), are influenced by existing linear and wavy channel structures. They went through multiple geometry optimisations, where parameters such as inlet velocity, the number of channels, and channel diameter were tested before being combined into the third and final optimal design (OD). All designs successfully maintained the maximum temperature of the cells below 306.5 K at an inlet velocity of 0.5 ms−1, meeting the predefined performance thresholds derived from the literature. The HFD design was the only one that failed to meet the temperature uniformity goal of 5 K. The optimal design achieved a maximum temperature of 301.311 K, which was 2.223 K lower than the VFD, and 4.707 K lower than the HFD. Furthermore, it produced a cell temperature difference of 1.144 K, outperforming the next-best design by 1.647 K, thus demonstrating superior temperature regulation. The OD design can manage temperatures by using lower inlet velocities and reducing power consumption. However, the increased cooling efficiency comes at the cost of an increase in weight for the system. This prompts the decision on whether to accommodate the added weight for improved safety or to allocate it to the addition of more batteries to enhance the vehicle’s power output.
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电动汽车中圆柱形锂离子电池组的先进热管理:垂直、水平和优化液体冷却设计的 CFD 比较研究
电动汽车(EV)中使用的电池组需要热管理系统来维持安全的工作温度,以提高设备性能,并缓解可能对电池造成不可逆损害的不规则温度。圆柱形锂离子电池因其能量密度高、生命周期长而被广泛应用于电动汽车行业。本报告利用计算流体动力学(CFD)研究了六芯电池组的三种液体冷却设计的热性能。前两种设计,即垂直流设计(VFD)和水平流设计(HFD),受到现有线性和波浪形通道结构的影响。它们经过了多次几何优化,对入口速度、通道数量和通道直径等参数进行了测试,最后合并成第三个也是最终的优化设计(OD)。在 0.5 ms-1 的入口速度下,所有设计都成功地将电池的最高温度维持在 306.5 K 以下,达到了根据文献得出的预定性能阈值。最佳设计的最高温度为 301.311 K,比 VFD 低 2.223 K,比 HFD 低 4.707 K。此外,它还产生了 1.144 K 的电池温差,比次佳设计高出 1.647 K,从而展示了卓越的温度调节能力。OD 设计可以通过使用较低的进气速度和降低功耗来控制温度。然而,冷却效率的提高是以系统重量的增加为代价的。这就需要决定是为了提高安全性而增加重量,还是将增加的重量用于增加电池以提高车辆的动力输出。
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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