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鋰離子電池火災滅火劑及滅火策略研究進展

Review of fire extinguishing agents and fire suppression strategies for lithium-ion battery fire

  • 摘要: 鋰離子電池憑借諸多優異性能,常作為電化學儲能主要載體之一,被廣泛應用. 然而,由于制造缺陷或者安全規范外使用,易觸發鋰電池熱失控并引發火災和爆炸等安全事故,鋰電池火災有效抑滅技術亟待解決. 本文通過對相關文獻的探討,全面綜述了鋰電池火災特點及熱失控機理、滅火劑及滅火策略,總結出鋰電池熱災害治理與防控的兩大需求:滅火和冷卻. 針對鋰電池火災所適用的滅火劑,著重介紹了氣體滅火劑、水基滅火劑和固體滅火劑中各自滅火劑的滅火效能和滅火機理,并從多角度進行對比分析. 為提高滅火和冷卻效果,進一步分析了協同滅火、間歇式噴霧、滅火微膠囊等滅火策略. 在此基礎上,總結出現有抑制鋰電池火災滅火劑的使用局限性以及滅火策略的不足,展望了未來提升鋰電池火災集成滅火和冷卻效果的不同方式,通過添加劑進行改性或者研制出高導熱性、高絕緣性、清潔廉價和無毒副產物的理想型滅火劑,設計出更加高效的新型滅火策略,有望實現鋰電池熱災害的有效治理與防控.

     

    Abstract: Lithium-ion batteries have been widely used as key carriers of electrochemical energy storage owing to their excellent performance. However, manufacturing defects or non-compliance with safety norms can easily trigger thermal runaway in lithium batteries, leading to safety accidents such as fires and explosions. This highlights the urgent need for advanced lithium battery fire suppression technology. This paper provides a comprehensive analysis of the fire characteristics and thermal runaway mechanisms of lithium batteries, based on a review of relevant literature. Additionally, it examines various fire extinguishing agents and strategies, highlighting the two primary requirements for managing and preventing thermal disasters associated with lithium batteries: fire suppression and cooling. For lithium battery fires, this study introduces and compares the fire extinguishing mechanisms, and the fire extinguishing and cooling efficiency of different types of extinguishing agents: gas-based, water-based, and solid agents. The comparison considers multiple perspectives, such as extinguishing and cooling capacity, insulation, toxicity, residue and cost. Notably, C6F12O exhibits excellent fire extinguishing capabilities, while water mist demonstrates superior cooling performance. To enhance fire extinguishing and cooling effects, new strategies and devices are analyzed, such as cooperative fire extinguishing, intermittent spray and fire extinguishing microcapsules. The study also summarizes the limitations of current extinguishing agents for suppressing lithium battery fires and the shortcomings of extinguishing strategies, offering several methods for improving the performance of extinguishing agents. Collaboration between early fire detection technology and fire suppression technology can achieve early warning and precise fire extinguishing effects. According to the specific characteristics of lithium battery fires, a comprehensive analysis from the perspectives of fire behavior, thermal behavior and system toxicity is essential. The development of an ideal extinguishing agent with high thermal conductivity, high insulation, clean, cost-effective and non-toxic byproducts can be achieved using additives or new formulations. By developing more efficient new extinguishing strategies, it is possible to effectively govern and prevent battery thermal disasters.

     

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