储能科学与技术 ›› 2020, Vol. 9 ›› Issue (4): 1113-1126.doi: 10.19799/j.cnki.2095-4239.2020.0028

• 储能系统与工程 • 上一篇    下一篇

针刺和挤压作用下动力电池热失控特性与机理综述

许辉勇1,2(), 范亚飞2, 张志萍2, 胡仁宗1()   

  1. 1. 华南理工大学材料科学与工程学院,广东 广州 510641
    2. 深圳普瑞赛思检测技术有限公司,广东 深圳 518107
  • 收稿日期:2020-01-07 修回日期:2020-02-13 出版日期:2020-07-05 发布日期:2020-06-30
  • 通讯作者: 胡仁宗 E-mail:1164372732@qq.com;msrenzonghu@scut.edu.cn
  • 作者简介:许辉勇(1975—),男,博士研究生,主要研究方向为锂离子电池热失控扩展及防控研究,E-mail:1164372732@qq.com;
  • 基金资助:
    国家自然科学基金(51822104);广东省重大科技专项-新能源汽车电池及动力系统(2017B010119005┫项目)

Thermal runaway characteristics and mechanisms of Li-ion batteries for electric vehicles under nail penetration and crush

XU"Huiyong1,2(), FAN"Yafei2, ZHANG"Zhiping2, HU"Renzong1()   

  1. 1. School of Materials Science and Engineering,South China University of Technology, Guangzhou 510641, Guangdong, China
    2. Shenzhen Precise Testing Technology Co. , Ltd, Shenzhen 518107, Guangdong, China
  • Received:2020-01-07 Revised:2020-02-13 Online:2020-07-05 Published:2020-06-30
  • Contact: Renzong HU E-mail:1164372732@qq.com;msrenzonghu@scut.edu.cn

摘要:

动力电池热失控是电池的一种不可逆失效现象,严重时电池燃烧爆炸会导致电动车辆燃烧,造成财产损失甚至严重的人身伤害。研究动力电池热失控对掌握电池失效规律和特性,优化电池设计,提升电池品质,降低电池热失控风险意义重大。在车辆实际运行中,机械滥用是触发动力电池热失控的重要原因之一。其中,针刺方法和挤压方法是动力电池热失控机械触发因素的典型研究方法。该文综述了针刺和挤压方法触发动力电池热失控的研究进展,并按照温度的动态变化,将电池热失控过程划分为4个阶段,接着结合电池正负极材料、隔膜、电解液、电池结构设计等方面,系统分析了针刺方式和挤压方式触发动力电池热失控的多项影响因素。相关研究结果表明,针刺和挤压方法的选择、电池荷电状态、电池内部结构设计和电池化学体系均对动力电池热失控结果有很大的影响。其中,电池内部结构设计和电池化学体系的选择是影响电池热安全性能的本质因素,机械等滥用方式导致电池产生大规模的内短路是触发热失控最直接的原因。最后,该文归纳分析了相关研究结果,对未来动力电池热失控研究方法和方向进行了展望,并对电池安全设计提出了合理化建议。

关键词: 电池安全, 热失控, 机械滥用, 锂离子电池

Abstract:

Thermal runaway of battery is an irreversible failure mode that can, in its most severe form, cause battery combustion and explosion, which can trigger the combustion of electrical vehicles, resulting in heavy loss of property and danger to human life. Therefore, it is considerably significant to study thermal runaway for understanding the failure mechanisms of the Li-ion batteries and improving the battery quality by optimizing the design to reduce the risk of battery combustion and explosion. Based on the electrical vehicle incident investigations, thermal runaway can be mainly attributed to mechanical abuse. In this study, the research progress with respect to the effects of nail penetration and crushing on the thermal runaway of the Li-ion vehicle batteries is summarized. In additional, the factors that influence the thermal runaway of Li-ion batteries are systematically analyzed, including battery materials and structures. Results show that under nail penetration and crushing, the battery charge states, internal structural design, and chemical systems considerably influence the thermal runaway results. Among them, the internal structural design and chemical systems of the batteries affect their thermal safety performance. Furthermore, mechanical abuses, such as nail penetration and crushing, trigger thermal runaway by causing large-scale internal short circuits in the batteries. Hence, rationalization proposals with respect to battery safety design have been proposed based on the related research results to avoid internal short circuits.

Key words: battery safety, thermal runaway, mechanical abuse, lithium ion battery

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