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Evaluating Air-Cooling Performance of Lithium-Ion-Battery Module with Various Cell Arrangements

机译:评估不同电芯排列的锂离子电池模块的风冷性能

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摘要

The significant heat generated during the operation of lithium-ion batteries raises the battery temperature thereby leading to performance degradation and thermal runaway in a thermal abuse environment. Therefore, a simple but effective battery thermal management system (BTMS) is crucial to achieve the permissible operating temperatures. In this work, the performance of air-cooled BTMS is evaluated by changing the arrangement of cells under discharging conditions. Seven distinct arrangements (trapezoidal, slanted, cross, aligned, staggered, tilted square, and zigzag) of lithium-ion cells are investigated in a rectangular battery pack. Two-way coupling of 1D electrochemical model and 2D conjugate thermal-fluid model is employed. The increasing Reynolds number reduces the cell temperature due to augmented convective effects. Under otherwise identical conditions, the zigzag cell arrangement outperforms the other cell arrangements but at the expense of the highest pressure drop (≈threefold). Particularly, the values of average and maximum cell temperature are reduced by ≈5K and ≈4K, respectively, for Re = 1000 at 1C in comparison to the aligned cell arrangement. Similarly, the least favorable performance is predicted by the trapezoidal, slanted, and cross-cell arrangements. Finally, a performance plot is suggested considering the trade-off between the power requirement and the cooling enhancement.
机译:锂离子电池运行过程中产生的大量热量会提高电池温度,从而导致性能下降和热失控。因此,一个简单而有效的电池热管理系统(BTMS)对于达到允许的工作温度至关重要。在这项工作中,通过改变放电条件下电池的排列来评估风冷BTMS的性能。在矩形电池组中研究了锂离子电池的七种不同排列(梯形、倾斜、交叉、对齐、交错、倾斜方形和锯齿形)。采用一维电化学模型和二维共轭热流体模型的双向耦合。由于对流效应增强,雷诺数的增加降低了电池温度。在其他相同条件下,锯齿形单元排列优于其他单元布置,但代价是最高压降(≈三倍)。特别是,与对齐的电池排列相比,在1C时Re = 1000时,平均和最大电池温度的值分别降低了≈5K和≈4K。同样,梯形、倾斜和交叉单元排列预测了最不利的性能。最后,考虑到功率要求和冷却增强之间的权衡,提出了一个性能图。

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