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Determination of the core temperature of a Li-ion cell during thermal runaway

机译:热失控期间锂离子电池核心温度的确定

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Safety and performance of Li-ion cells is severely affected by thermal runaway where exothermic processes within the cell cause uncontrolled temperature rise, eventually leading to catastrophic failure. Most past experimental papers on thermal runaway only report surface temperature measurement, while the core temperature of the cell remains largely unknown. This paper presents an experimentally validated method based on thermal conduction analysis to determine the core temperature of a Li-ion cell during thermal runaway using surface temperature and chemical kinetics data. Experiments conducted on a thermal test cell show that core temperature computed using this method is in good agreement with independent thermocouple-based measurements in a wide range of experimental conditions. The validated method is used to predict core temperature as a function of time for several previously reported thermal runaway tests. In each case, the predicted peak core temperature is found to be several hundreds of degrees Celsius higher than the measured surface temperature. This shows that surface temperature alone is not sufficient for thermally characterizing the cell during thermal runaway. Besides providing key insights into the fundamental nature of thermal runaway, the ability to determine the core temperature shown here may lead to practical tools for characterizing and mitigating thermal runaway. (C) 2017 Elsevier B.V. All rights reserved.
机译:锂离子电池的安全性和性能会受到热失控的严重影响,其中电池内部的放热过程会导致温度失控,最终导致灾难性故障。过去有关热失控的大多数实验论文仅报告了表面温度测量,而电池的核心温度仍然未知。本文介绍了一种基于热传导分析的实验验证方法,可使用表面温度和化学动力学数据确定锂离子电池在热失控期间的核心温度。在热测试单元上进行的实验表明,在各种实验条件下,使用这种方法计算出的核心温度与基于独立热电偶的测量结果非常吻合。经过验证的方法可用于预测多个先前报道的热失控测试随时间变化的核心温度。在每种情况下,发现预测的峰值核心温度都比测得的表面温度高数百摄氏度。这表明仅表面温度不足以在热失控期间热表征电池。除了提供关于热失控的基本性质的关键见解之外,确定此处显示的核心温度的能力可能会导致用于表征和缓解热失控的实用工具。 (C)2017 Elsevier B.V.保留所有权利。

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