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Deformation and Failure Properties of Lithium-Ion Battery Under Axial Nail Penetration

机译:轴向指甲渗透下锂离子电池的变形和故障特性

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摘要

As one of the commonly used power sources for electric vehicles, cell phones, and laptops, lithium-ion batteries (LIBs) have aroused more and more attention. Lithium-ion batteries will inevitably suffer from external abuse loading, triggering thermal runaway. Nail penetration is one of the most dangerous external loading methods, so it is meaningful to study the failure behaviors under this loading condition. In this article, the experimental study of 18650 cylindrical lithium-ion batteries (with nickel cobalt aluminum oxide cathode) under axial nail penetration is carried out. Force, temperature, and voltage data are recorded synchronously to learn its mechanical, thermal, and electrochemical behaviors, respectively. Then, the loading velocity effect is discussed, and the results show that the loading velocity has no obvious effect on failure properties of lithium-ion battery. Besides, deformation and failure properties of lithium-ion battery are discussed in detail. A simple homogenous computational model is established to predict the mechanical responses of the battery. The partially detailed model is also established to explore the failure mechanism. The batteries are disassembled after loading to better understand the failure morphologies. Two failure modes are discovered through experiments and computational model. The findings can contribute to a better understanding of the failure mechanism of lithium-ion battery under axial nail penetration, providing reference for battery safe design.
机译:锂离子电池(LiB)作为电动汽车、手机和笔记本电脑的常用电源之一,已引起越来越多的关注。锂离子电池不可避免地会受到外部负载的影响,引发热失控。钉扎是最危险的外荷载方式之一,因此研究钉扎在外荷载作用下的破坏行为具有重要意义。本文对18650柱状锂离子电池(镍钴铝氧化物正极)进行了轴向钉扎实验研究。同时记录力、温度和电压数据,以分别了解其机械、热和电化学行为。然后讨论了加载速度效应,结果表明,加载速度对锂离子电池的失效性能没有明显影响。此外,还详细讨论了锂离子电池的变形和失效特性。建立了一个简单的均质计算模型来预测电池的机械响应。建立了局部详细模型,探讨了失效机理。电池在加载后被拆卸,以便更好地了解故障形态。通过实验和计算模型发现了两种失效模式。研究结果有助于更好地理解轴向钉子穿透下锂离子电池的失效机理,为电池安全设计提供参考。

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