Advances in safety of lithium-ion batteries for energy storage: Hazard characteristics and active suppression techniques

Yan Wang , Tianmin Yu , Jie Chen , Baobin Gao , Mingqiao Yu , Jiateng Zhu
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Abstract

Lithium-ion batteries (LIBs) are widely regarded as established energy storage devices owing to their high energy density, extended cycling life, and rapid charging capabilities. Nevertheless, the stark contrast between the frequent incidence of safety incidents in battery energy storage systems (BESS) and the substantial demand within the energy storage market has become increasingly prominent. Firstly, despite the escalating demand for energy density in BESS, in-depth understanding of thermal runaway (TR) in large-capacity LIBs and the associated risks posed by battery venting gases (BVG) remains elusive. Secondly, the absence of consensus regarding the selection of fire extinguishing agents and the development of fire suppression strategies for BESS has resulted in prevailing technological inadequacies in active suppression measures. This manuscript comprehensively reviews the characteristics and associated influencing factors of the four hazard stages of TR, TR propagation, BVG accumulation, and fire (BVG combustion and explosion), particularly focusing on the spatial characteristics of energy storage. Combining the above analysis, the suppression mechanisms, effects, and applicable hazard stages of extinguishing agents are analyzed, and the positive effects of fire suppression strategies are discussed. Additionally, the experimental research, mathematical calculation and numerical simulation methods pertaining to the combustion and explosion characteristics are summarized, alongside offering corresponding research suggestions and prospects aimed at fostering advancements in BESS safety.

Abstract Image

用于储能的锂离子电池安全方面的进展:危险特性和主动抑制技术
锂离子电池(LIB)具有能量密度高、循环寿命长和充电速度快等优点,被广泛视为成熟的储能设备。然而,电池储能系统(BESS)频发的安全事故与储能市场的巨大需求之间的鲜明对比日益突出。首先,尽管对 BESS 能量密度的要求不断提高,但对大容量 LIB 的热失控(TR)以及电池放气(BVG)所带来的相关风险的深入了解仍然遥遥无期。其次,由于在 BESS 灭火剂的选择和灭火策略的制定方面缺乏共识,导致主动灭火措施在技术上普遍存在不足。本手稿全面回顾了 TR、TR 传播、BVG 积累和火灾(BVG 燃烧和爆炸)四个危害阶段的特征和相关影响因素,尤其关注储能的空间特征。结合上述分析,分析了灭火剂的抑制机理、效果和适用的危害阶段,探讨了灭火策略的积极作用。此外,还总结了与燃烧和爆炸特性相关的实验研究、数学计算和数值模拟方法,并提出了相应的研究建议和展望,旨在促进 BESS 安全的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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