Enhancing lithium-ion battery safety: A comparative study of separator performance under mechanical abuse

Alexander Hahn , Magdalena Ruf , Stefan Doose , Arno Kwade
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Abstract

Batteries serve as the primary energy storage solution for a wide range of applications. However, the high energy density of these batteries presents significant safety challenges. The separator in a battery cell plays a crucial role since damage to the separator will cause an internal short circuit and can trigger a thermal runaway. To evaluate the differences in the response of a separator to mechanical stress five distinct polyolefin and nonwoven separators were tested in two separator material level tests. Battery cells were then fabricated with these separators and tested for mechanical stability and thermal runaway behavior during crush tests with a hemispherical punch. The results disclose that internal short circuits occur in the dry processed polyolefin-based separators at low mechanical loads. The incorporation of ceramic particles within the nonwovens and the elevated thermal stability impart a heightened short-circuit load capacity of 17 % and a notable delay in the onset of thermal runaway. The most promising outcome is observed in the wet-processed PE separator with a ceramic coating, exhibiting a 33 % increase in load and a 25 % increase in deformation compared to the polyolefin separators. In addition, CO concentrations doubled between nonwoven and pure polyolefin based separators.
提高锂离子电池的安全性:机械滥用下隔膜性能的比较研究
电池是广泛应用的主要储能解决方案。然而,这些电池的高能量密度带来了重大的安全挑战。电池中的分离器起着至关重要的作用,因为分离器的损坏将导致内部短路,并可能引发热失控。为了评估分离机对机械应力响应的差异,在两个分离机材料水平测试中测试了五种不同的聚烯烃和非织造隔膜。然后用这些分离器制造电池单元,并在半球形冲床的挤压试验中测试其机械稳定性和热失控行为。结果表明,在低机械负荷下,干法聚烯烃基分离器发生内部短路。陶瓷颗粒在非织造布内的掺入和热稳定性的提高使短路负载能力提高了17% %,并显著延缓了热失控的发生。最有希望的结果是在带有陶瓷涂层的湿法处理PE分离器中观察到,与聚烯烃分离器相比,负载增加了33 %,变形增加了25 %。此外,CO浓度在非织造布和纯聚烯烃基分离器之间翻了一番。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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