主管:中华人民共和国应急管理部
主办:应急管理部天津消防研究所
ISSN 1009-0029  CN 12-1311/TU

消防科学与技术 ›› 2022, Vol. 41 ›› Issue (7): 997-1000.

• • 上一篇    下一篇

预制舱式磷酸铁锂电池储能系统安全性分析研究

陈秉安   

  1. (福建省消防救援总队,福建 福州350000)
  • 出版日期:2022-07-15 发布日期:2022-07-15
  • 作者简介:作者简介:陈秉安(1972-),男,福建南安人,福建省消防救援总队副总队长,高级专业技术资格,学士,主要从事消防监督管理工作和研究,福建省福州市鼓楼区北环西路196号,350000。

Analysis study on the safety of electrochemical energy storage station

CHEN Bing-an   

  1. (Fujian Fire and Rescue Brigade, Fujian Fuzhou 350000, China)
  • Online:2022-07-15 Published:2022-07-15

摘要: 电化学储能是开展电网调峰平谷、风/光能并网,实现“双碳”目标的关键环节,在政策导向和市场需求的双擎推动下迅猛发展,国内以磷酸铁锂电池储能预制舱/电站等形式大量涌现。然而,锂离子电池储能系统本身具有燃烧爆炸风险、成组密集布置进一步增加其发生热失控火灾事故的风险,同时由于电化学储能系统涉及固体、液体、气体及电气火灾等多种形式,给灭火救援处置提出了新的挑战。本文对电化学储能电站的安全性进行分析,并通过锂离子电池储能箱的全尺寸实验进行验证,获取其热失控过程中温度、气体浓度等多种参数,揭示锂离子电池储能箱热失控过程的机理,分析规模化电化学储能系统的火灾风险。研究结果显示,磷酸铁锂电池在热失控燃爆过程中电芯温度、环境温度出现明显变化,其中电芯温度可达700 ℃以上,在规模化应用条件下,磷酸铁锂电池热失控风险高,发生燃爆事故的危害大。因此,电化学储能电站需要从产品标准、设计规范、应急处置等方面加强安全管控,尤其需要开展适用于锂离子电池储能系统的预警装置和热管理技术研究。

关键词: 关键词:电化学储能, 磷酸铁锂电池, 全尺寸实验, 消防安全

Abstract: Abstract: Electrochemical energy storage is a key link in realization of the emission peak and the carbon neutrality goal, impelling the application of breeze and photovoltaic power in the electric grid and applying to the grid peak shaving. Under the dual engine of policy guidance and market demand, prefabricated cabin energy station of lithium-ion phosphate batteries is developing rapidly. However, the lithium-ion battery is easy to occur combustion and explosion once thermal runaway, and dense arrangement layout of lithium-ion battery further increase the risk of fire disaster in the prefabricated cabin. Meanwhile, the complex fire contains of solid, liquid, gas and electrical fires, which put forward a new challenge for firefighting and rescue disposal. In this paper, the safety of electrochemical energy storage energy station had been combed and analyzed deeply. Via the full-scale experiment of the lithium-ion battery prefabricated cabin, there were various parameters such as fire temperature, smoke gas concentration and so on have been obtained. The thermal runaway mechanism of lithium-ion battery was revealed and the fire risk of the electrochemical energy storage system was analyzed in this research. The research results had shown that the cell and ambient temperature of the lithium iron phosphate battery change significantly during the thermal runaway and combustion process, and the fire temperature above 700℃. Under the conditions of massive application, the thermal runaway risk and explosion hazards of the lithium iron phosphate battery was much higher great than the experimental condition. Therefore, electrochemical energy storage power stations need to strengthen safety management and normalize in terms of product standards, design specifications, and emergency handling.

Key words: Key words: electrochemical energy storage, lithium iron phosphate battery, full-scale experiment, fire safety