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Numerical study of heat transfer enhancement using vortex generator for thermal management of lithium ion battery

机译:涡流发生器促进锂离子电池热管理的传热数值研究

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A numerical study of two types of vortex generator (VG) have been conducted to enhance heat transfer of cooling in the battery thermal management system. The thermal behaviour and cooling effects have been investigated to evaluate the heat transfer performance of two types of VG. Air flow model coupled with a pouch cell model is carried out in this study. The results show that both types of vortex generators can enhance heat transfer before VGs, but only delta winglet VG can still enhance local heat transfer after it due to more vortices generated that can mix cold and hot air flow between the top and bottom thermal layers completely. It is found that the heat transfer enhancement is due to bulk fluid mixing, boundary layer modification and flow destabilization by VGs. The maximum temperature of pouch cell is also numerically investigated by a validated battery model. The result shows that the maximum temperature of a pouch cell can be decreased by both delta winglet and rectangular rib. For the discharging rate at 5C, it can be decreased by 10% and the local Nusselt number can be increased by 38% compared to the baseline scenario without any VGs. (C) 2018 Elsevier Ltd. All rights reserved.
机译:已经对两种类型的涡流发生器(VG)进行了数值研究,以增强电池热管理系统中冷却的传热。已经研究了热行为和冷却效果,以评估两种VG的传热性能。在这项研究中进行了空气流动模型与袋状细胞模型的耦合。结果表明,两种类型的涡流发生器都可以在VG之前增强传热,但只有三角翼小翼VG可以在其之后增强局部传热,因为产生的更多的涡流可以完全混合顶部和底部热层之间的冷热气流。 。发现传热的增强是由于大量流体混合,边界层改性和VG引起的流量不稳定。袋式电池的最高温度也通过经过验证的电池模型进行了数值研究。结果表明,三角形小翼和矩形肋均可降低袋状细胞的最高温度。与没有任何VG的基线情况相比,在5C时的放电速率可以降低10%,局部Nusselt数量可以提高38%。 (C)2018 Elsevier Ltd.保留所有权利。

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