电连接对并联电池模块热传播的影响

IF 0.7 Q4 TRANSPORTATION SCIENCE & TECHNOLOGY SAE International Journal of Electrified Vehicles Pub Date : 2023-10-11 DOI:10.4271/14-13-03-0018
Lei Liu, Nannan Kuang, Jian Hu, Sanbing Liu, Dinghong Liu, Wenkai Dong, Peixia Yang, Anmin Liu, Peng Peng
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引用次数: 0

摘要

在并联电池模块中,电气连接不仅在直接传热中起着重要作用,而且在电能的传递和电热效应的转化中也起着重要作用。基于4个并联电池组成的模块的等效电路和热失控实验研究,建立了热传导仿真研究模型,叠加了热失控和热传播过程中的放电过程和相应的电热效应,关注电池放电后荷电状态(SoC)状态和相应的热失控能量释放变化。对并联和非并联电池模块的热失控和热传播特性进行了分析,结果表明,在不考虑系统与环境之间能量交换的情况下,并联电池模块会加速热传播过程。进一步分析表明,电池单元的储能与热失控能之间的关系是影响并联电池模块热传播速率的关键因素。如果电池存储的电能随荷电状态变化的斜率大于电池热失控能量随荷电状态变化的斜率,则并联电路将加速电池的热传播过程。如果电池的存储电能随荷电状态变化的斜率小于其热失控能量随荷电状态变化的斜率,则并联电路将延迟热传播过程。
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Effect of Electrical Connection on Thermal Propagation of Parallel Battery Module
Electrical connection plays an important role in not only direct heat transfer, but also the transmission of electric energy and the transformation of electrothermal effect in the parallel battery modules. The thermal propagation simulation research model was established based on the equivalent circuit and thermal runaway experimental research of a module formed by four parallel cells, which superimposes the discharge process and corresponding electrothermal effect in the process of thermal runaway and thermal propagation, and pays attention to the SoC (state of charge) state and corresponding thermal runaway energy release changes after cell discharged. Thermal runaway and propagation characteristics of parallel and non-parallel battery modules were analyzed and results showed that without considering the energy exchange between the system and the environment, the parallel battery module will accelerate the process of thermal propagation. Further analysis shows that the relationship between the stored electric energy and the thermal runaway energy of battery cells is the key factor affecting the thermal propagation rate of parallel battery module. If the slope of the stored electric energy of the cell changing with SoC is greater than the slope of its thermal runaway energy changing with SoC, the parallel circuit will accelerate the thermal propagation process. If the slope of the stored electric energy of the battery changing with SoC is less than the slope of its thermal runaway energy changing with SoC, the parallel circuit will delay the thermal propagation process.
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来源期刊
SAE International Journal of Electrified Vehicles
SAE International Journal of Electrified Vehicles Engineering-Automotive Engineering
CiteScore
1.40
自引率
0.00%
发文量
15
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