应对减轻航空锂离子电池火灾的挑战

IF 5 Q2 ENERGY & FUELS
Paul Papas
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引用次数: 0

摘要

航空业在减少环境足迹方面面临着紧迫的挑战,特别是随着全球客运量的预计增长。电气化和更多的电动飞机,特别是通过锂离子电池(LiB)系统,为减少排放提供了一条前景广阔的途径,但也带来了重大的安全问题,特别是热失控(TR)事件。这篇前瞻性论文探讨了航空环境对开发安全锂电池系统提出的独特挑战。它讨论了多方面的缓解方法,将防火结构与先进的热管理和防火技术相结合。探讨了各种冷却技术和灭火剂在扑灭锂电池火灾和缓解热失控传播方面的有效性。提出了集成式锂电池抑制系统,将火灾遏制、抑制和热管理功能结合起来,以达到所需的高特定能量密度水平。要将安全的锂电池组解决方案推广到商用航空领域,需要监管机构、原始设备制造商 (OEM)、工程师和研究人员共同努力,建立标准化的设计标准,开发经过验证的建模工具,并制定严格的认证测试要求。总之,要解决飞机应用中大型锂电池组的安全问题,需要采取全面、综合的方法。本文深入探讨了当前的研究,指出了主要挑战,并概述了推进航空锂电池安全的未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Meeting the challenge of mitigating Li-ion battery fires for aviation

The aviation industry faces a pressing challenge in reducing its environmental footprint, especially with the projected growth in global passenger traffic. Electrification and more-electric aircraft, particularly through Lithium-ion Battery (LiB) systems, offers a promising pathway to reduce emissions but introduces significant safety concerns, particularly regarding thermal runaway (TR) events. This prospective paper examines the unique challenges posed by aviation environments for developing safe LiB systems. It discusses multifaceted mitigation approaches, integrating fire containment structures with advanced thermal management and fire protection technologies. Various cooling technologies and fire suppression agents are explored for their effectiveness in extinguishing LiB fires and mitigating thermal runaway propagation. Integrated LiB suppression systems are proposed to combine fire containment, suppression, and thermal management functionalities for achieving the demanding specific energy density levels that will be required. Scaling safe LiB pack solutions for commercial aviation requires coordinated efforts among regulators, original equipment manufacturers (OEMs), engineers, and researchers to establish standardized design criteria, develop validated modeling tools, and establish rigorous certification testing requirements. In conclusion, addressing the safety concerns of large LiB packs in aircraft applications requires a holistic, integrated approach. This paper provides insights into current research, identifies key challenges, and outlines future directions for advancing LiB safety in aviation.

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