Experimental investigation of thermal runaway behaviour and inhibition strategies in large-capacity lithium iron phosphate (LiFePO4) batteries for electric vehicles

IF 1.3 4区 化学 Q4 ELECTROCHEMISTRY International Journal of Electrochemical Science Pub Date : 2024-11-13 DOI:10.1016/j.ijoes.2024.100877
Cheng Chang , Ruijie Wang
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Abstract

Large-scale lithium-ion batteries play an important role in the electric vehicle market and the thermal runaway (TR) behaviour of batteries is one of the significant threats to the passengers. In this study, we conducted a series of thermal abuse tests concerning single battery and battery box to investigate the TR behaviour of a large-capacity (310 Ah) lithium iron phosphate (LiFePO4) battery and the TR inhibition effects of different extinguishing agents. The study shows that before the decomposition of the solid electrolyte interphase (SEI) film, temperature consistency within the battery were maintained and it was advisable to use temperature detectors. With the destruction of the internal structure of the battery and the uneven temperature distribution at the subsequent battery reaction stage, a large amount of combustible gas was released when the safety valve was opened. The combustible gas fire detector is used to improve alarm reliability and provided a stable early warning response time. Based on this TR behaviour, a LiFePO4 battery box with a standard size of 1060 × 660 × 250 mm was constructed. The TR inhibition effect of two different extinguishing agents (heptafluoropropane and perfluorohexanone) were investigated using a metal tube spraying method with a spraying dose of 1.8 kg (spraying rate of 0.06 kg/s) and a spraying pressure of 2.5 MPa. The results showed that using either of these, satisfy the requirements for TR inhibition in large-capacity LiFePO4 batteries and the flames could be completely extinguished without any reignition, and the chain reaction of the surrounding batteries was effectively prevented. Moreover, heptafluoropropane was proven to have a shorter fire-extinguishing time, whereas perfluorohexanone had the advantage of inhibiting temperature rise. This study provides valuable experimental results for early warning and inhibition of TR in large-capacity LiFePO4 batteries for electric vehicles.
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电动汽车用大容量磷酸铁锂(LiFePO4)电池热失控行为和抑制策略的实验研究
大型锂离子电池在电动汽车市场中发挥着重要作用,而电池的热失控(TR)行为是对乘客的重大威胁之一。在这项研究中,我们对单体电池和电池箱进行了一系列热滥用测试,以研究大容量(310 Ah)磷酸铁锂电池的热失控行为以及不同熄灭剂对热失控的抑制作用。研究表明,在固体电解质相间膜(SEI)分解之前,电池内部的温度保持一致,最好使用温度检测器。在随后的电池反应阶段,随着电池内部结构的破坏和温度分布的不均匀,安全阀打开时会释放出大量可燃气体。可燃气体火灾探测器的使用提高了报警可靠性,并提供了稳定的预警响应时间。根据这种 TR 行为,构建了一个标准尺寸为 1060 × 660 × 250 mm 的磷酸铁锂电池盒。采用金属管喷射法研究了两种不同灭火剂(七氟丙烷和全氟己酮)的 TR 抑制效果,喷射剂量为 1.8 千克(喷射速度为 0.06 千克/秒),喷射压力为 2.5 兆帕。结果表明,无论采用上述哪种方法,都能满足大容量磷酸铁锂电池的TR抑制要求,火焰可以完全熄灭,没有复燃现象,并有效防止了周围电池的连锁反应。此外,实验证明七氟丙烷的灭火时间更短,而全氟己酮则具有抑制温度上升的优势。这项研究为电动汽车用大容量磷酸铁锂电池的早期预警和抑制 TR 提供了宝贵的实验结果。
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来源期刊
CiteScore
3.00
自引率
20.00%
发文量
714
审稿时长
2.6 months
期刊介绍: International Journal of Electrochemical Science is a peer-reviewed, open access journal that publishes original research articles, short communications as well as review articles in all areas of electrochemistry: Scope - Theoretical and Computational Electrochemistry - Processes on Electrodes - Electroanalytical Chemistry and Sensor Science - Corrosion - Electrochemical Energy Conversion and Storage - Electrochemical Engineering - Coatings - Electrochemical Synthesis - Bioelectrochemistry - Molecular Electrochemistry
期刊最新文献
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