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Thermo-electrochemical model for forced convection air cooling of a lithium-ion battery module

机译:锂离子电池模块强制对流风冷的热电化学模型

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Thermal management is critical for safe and reliable operation of lithium-ion battery systems. In this study, a one-dimensional thermal-electrochemical model of lithium-ion battery interactively coupled with a two-dimensional thermal-fluid conjugate model for forced convection air cooling of a lithium-ion battery module is presented and solved numerically. This coupled approach makes the model more unique and detailed as transport inside each cell in the battery module is solved for and thus covering multiple length and time scales. The effect of certain design and operating parameters of the thermal management system on the performance of the battery module is assessed using the coupled model. It is found that a lower temperature increase of the battery module can be achieved by either increasing the inlet air velocity or decreasing the distance between the cells. Higher air inlet velocity, staggered cell arrangement or a periodic reversal airflow of high reversal frequency results in a more uniform temperature distribution in the module. However, doing so increases the parasitic load as well as the volume of the battery module whence a trade-off should be taken into account between these parameters. (C) 2016 Elsevier Ltd. All rights reserved.
机译:热管理对于锂离子电池系统的安全可靠运行至关重要。在这项研究中,提出了锂离子电池的一维热电化学模型和二维热流体共轭模型相互作用的锂离子电池模块强制对流空气冷却模型,并进行了数值求解。这种耦合方法使模型更加独特和详细,因为解决了电池模块中每个电池内部的运输问题,从而涵盖了多个长度和时间范围。使用耦合模型评估热管理系统的某些设计和操作参数对电池模块性能的影响。已经发现,可以通过增加进气速度或减小电池之间的距离来实现电池模块的较低的温度升高。较高的进气速度,交错的电池布置或高反向频率的周期性反向气流会导致模块中的温度分布更加均匀。但是,这样做会增加寄生负载以及电池模块的体积,因此应在这些参数之间进行权衡。 (C)2016 Elsevier Ltd.保留所有权利。

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