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以Li(NiCoMn)O为正极的大型电池模组中热失控及其传播的实验研究

Experimental investigation on the thermal runaway and its propagation in the large format battery module with Li(NiCoMn)O as cathode.

作者信息

Li Huang, Duan Qiangling, Zhao Chunpeng, Huang Zonghou, Wang Qingsong

机构信息

State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei, 230026, China.

State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei, 230026, China.

出版信息

J Hazard Mater. 2019 Aug 5;375:241-254. doi: 10.1016/j.jhazmat.2019.03.116. Epub 2019 Mar 27.

Abstract

Thermal runaway (TR) and its propagation behavior in the large format lithium-ion battery (LIB) with various states of charge (SOC) are experimentally investigated in this work. Thermal runaway feature of the cell under thermal abuse condition is characterized using extended volume accelerating rate calorimeter. Based on the experimental results, the modules with five LIBs are built to analyze TR propagation mechanism and further discuss the impact of SOC on TR propagation behavior. It is found that the TR is firstly triggered on the layer near the front surface of the LIB, and then spread to the whole battery. The average propagation time inside the single LIB is 10 s in the module with 100% SOC while 39 s in the module with 50% SOC. Moreover, the module with 100% SOC shows intense combustion behavior, which is replaced by a considerable amount of smoke in the module with 50% SOC. Besides, the average propagation time between adjacent LIBs is significantly delayed from 87 s in 100% SOC module to 307 s in 50% SOC module. This work details TR propagation feature in large format LIB pack, and can provide the guidelines for the safety design of lithium-ion battery module.

摘要

本工作通过实验研究了热失控(TR)及其在不同荷电状态(SOC)的大型锂离子电池(LIB)中的传播行为。使用扩展体积加速量热仪表征了热滥用条件下电池的热失控特性。基于实验结果,构建了包含五个锂离子电池的模块,以分析热失控传播机制,并进一步讨论荷电状态对热失控传播行为的影响。研究发现,热失控首先在锂离子电池前表面附近的层触发,然后蔓延至整个电池。在荷电状态为100%的模块中,单个锂离子电池内部的平均传播时间为10秒,而在荷电状态为50%的模块中为39秒。此外,荷电状态为100%的模块表现出强烈的燃烧行为,而在荷电状态为50%的模块中则被大量烟雾所取代。此外,相邻锂离子电池之间的平均传播时间从荷电状态为100%的模块中的87秒显著延迟至荷电状态为50%的模块中的307秒。本工作详细阐述了大型锂离子电池组中的热失控传播特性,并可为锂离子电池模块的安全设计提供指导。

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