多因素影响下锂离子电池模块热跑道传播的综合建模和安全保护策略

Zhixiong Chai, Junqiu Li, Ziming Liu, Zhengnan Liu, Xin Jin
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引用次数: 0

摘要

本文针对锂离子电池模块热失控传播的难题,提出了一种基于热传播模型的安全保护设计方法。首先,系统分析了电池热失控的触发机制,建立了电池热失控模型,并通过实验校准了模型参数。其次,通过整合电池片热失控模型并考虑电池模块的三维结构,建立并验证了一个全面的热失控传播模型。随后,利用建立的电池模块热传播模型,结合多因素影响和典型工作条件,对热失控传播进行了模拟研究。研究阐明了电池模块在不同安全保护策略下的热失控传播特性。研究结果突出表明,所提出的安全保护策略能有效缓解电池模块内的热扩散,尤其是在热失控受多种因素影响的情况下。
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Comprehensive Modeling and Safety Protection Strategy for Thermal Runway Propagation in Lithium-Ion Battery Modules under Multi-Factor Influences
This paper addresses the challenge of thermal runaway propagation in lithium-ion battery modules and presents a safety protection design method based on a thermal propagation model. Firstly, it systematically analyzes the triggering mechanisms of thermal runaway in batteries, establishes a model for cell thermal runaway, and calibrates the model parameters through experiments. Secondly, by integrating the cell thermal runaway model and considering the three-dimensional structure of the battery module, a comprehensive thermal runaway propagation model is developed and validated. Subsequently, a simulation study on thermal runaway propagation, incorporating multi-factor influences and typical operating conditions, is conducted using the established thermal propagation model for the battery module. The study elucidates the thermal runaway propagation characteristics of the battery module under different safety protection strategies. The findings highlight that the proposed safety protection strategy effectively mitigates thermal propagation within the battery module, particularly when the thermal runaway is influenced by multiple factors.
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