电弧故障诱发锂离子电池的失效机理和热失控行为

IF 16.3 1区 工程技术 Q1 ENERGY & FUELS
Yue Zhang , Ping Ping , Xinyi Dai , Chentong Li , Zheng Li , Ping Zhuo , Liang Tang , Depeng Kong , Xiaokang Yin
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引用次数: 0

摘要

随着电动汽车和储能系统等锂离子电池系统的普及,因电气故障引发的安全事故也越来越多。许多事故报告表明,电弧故障已成为锂离子电池系统事故的主要诱因之一,但相关研究尚不充分。本研究采用仿弧系统研究了不同电弧能量对电池安全阀的影响,以及故障电池的电化学特性。此外,原位和非原位测试表明,故障电池发生降解和失效的原因是空气中的水分进入电池内部,导致内阻增大、活性材料和可循环锂流失。最后,故障电池在热失控时没有阀门打开,点火时间比正常电池早四百秒,表明火灾危险性更大。这些结果对电池系统与电弧故障有关的安全设计,以及故障检测和早期预警特性都很有价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Failure mechanism and thermal runaway behavior of lithium-ion battery induced by arc faults

Failure mechanism and thermal runaway behavior of lithium-ion battery induced by arc faults

As the widespread of lithium-ion battery systems such as electric vehicles and energy storage systems, the number of safety incidents due to electrical faults are increasing. Many accident reports have demonstrated that arc faults have become one of the main triggers of LIB system accidents, however, the related studies are inadequate. In this study, an arc imitation system is employed to investigate the influence of different arc energies on battery safety valve, as well as the electrochemical characteristics of faulty batteries. The results show that the minimum arc power to breach the safety valve ranges from 110 to 441 W. The maximum temperature rise rate on the battery surface can exceed 15 °C/s with arc power of around 1000 W. Further, the testing of in-situ and ex-situ indicate the faulty batteries undergo degradation and failure due to that moisture in the air enters the battery interior, resulting in increased internal resistance, loss of active materials and cyclable lithium. Finally, the faulty battery has no valve opening during thermal runaway, and the ignition time is four hundred seconds earlier than that of the normal battery, indicating more severe fire dangers. The results are valuable for safety design of battery systems in relation to arc faults, as well as the characteristic for fault detection and early warning.

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来源期刊
Renewable and Sustainable Energy Reviews
Renewable and Sustainable Energy Reviews 工程技术-能源与燃料
CiteScore
31.20
自引率
5.70%
发文量
1055
审稿时长
62 days
期刊介绍: The mission of Renewable and Sustainable Energy Reviews is to disseminate the most compelling and pertinent critical insights in renewable and sustainable energy, fostering collaboration among the research community, private sector, and policy and decision makers. The journal aims to exchange challenges, solutions, innovative concepts, and technologies, contributing to sustainable development, the transition to a low-carbon future, and the attainment of emissions targets outlined by the United Nations Framework Convention on Climate Change. Renewable and Sustainable Energy Reviews publishes a diverse range of content, including review papers, original research, case studies, and analyses of new technologies, all featuring a substantial review component such as critique, comparison, or analysis. Introducing a distinctive paper type, Expert Insights, the journal presents commissioned mini-reviews authored by field leaders, addressing topics of significant interest. Case studies undergo consideration only if they showcase the work's applicability to other regions or contribute valuable insights to the broader field of renewable and sustainable energy. Notably, a bibliographic or literature review lacking critical analysis is deemed unsuitable for publication.
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