利用三维电化学-热耦合模型探索磷酸铁锂袋式锂离子电池的内部均匀性

Jianpeng Mi , Xiaolong Liu , Daiman Zhu , Longfei Chen , Yongli Li
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引用次数: 0

摘要

随着电池充放电过程的进行,锂离子的迁移不可避免地会导致电池内部电化学和热特性的不均匀分布,从而降低电池容量和安全性。在这项工作中,基于三维电化学-热耦合模型研究了 20 Ah 袋装磷酸铁锂离子电池的内部特性。研究发现,无论是减小正极还是负极的颗粒尺寸,都会提高电池容量。此外,通过调节正极厚度(Lpos)和对流传热系数(h),固体锂浓度和温度的均匀性也得到了优化。应采用相对较小的 Lpos 和高于临界值的 h。从热分布来看,随着放电速率的增加,不可逆反应热始终占主导地位,而总热量中欧姆热的比例增加,高温区始终位于片的内侧。本研究提出的方法可用于重复电池单元更多和尺寸更大的袋式电池。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The exploration of the internal homogeneities for a LiFePO4 pouch lithium-ion battery with a 3D electrochemical-thermal coupled model

Along with the battery charge/discharge processes, the migration of the Li ions inevitably leads to an inhomogeneous distribution of the battery internal electrochemical and thermal characteristics, deteriorating the battery capacity and safety. In this work, the internal characteristics of a 20 Ah pouch LiFePO4 lithium-ion battery have been investigated based on a 3D electrochemical-thermal coupled model. It is found that the reduction of the particle size for either the cathode or anode would increase the battery capacity. Moreover, with the modulation of the thickness of cathode (Lpos) and convective heat transfer coefficient (h), the homogeneity of solid lithium concentration and temperature has been optimized. A relatively smaller Lpos and an h higher than the critical value should be adopted. From the aspect of thermal distribution, as the discharge rate increases, the irreversible reaction heat always dominates, while the proportion of ohmic heat among the total heat increases, and the high temperature region always locates on the inner sides of the tabs. The methodology proposed in this work could be applied to pouch batteries with more repeated cell units and larger sizes.

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