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Study on the Performance of Parallel Air-Cooled Structure and Optimized Design for Lithium-Ion Battery Module

机译:锂离子电池模块平行风冷结构和优化设计的性能研究

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Temperature and temperature consistency have an important effect on the effective performance and thermal safety of lithium-ion batteries. Huge temperature inconsistency can lead to the behavior of overcharge and overdischarge so that it improves the risk of fire and thermal runaway. Temperature rise and heat generation rate during discharging under adiabatic condition are measured by experiments. Based on the conclusion and data obtained by experiments, the finite element model of traditional and optimized parallel air-cooled structure are built by COMSOL Multiphysics 5.3a(R). Meanwhile, the problem of flow inhomogeneity in parallel air-cooled structure and the cooling performance of optimized design are researched and discussed. Obvious temperature inconsistency is observed inside the battery module with a traditional cooling structure. Adding a fan on the bottom of module contributes to decay the maximum temperature and improve the temperature consistency effectively. The average temperature difference is maintained at about 1.4 degrees C when the velocity of inlet air exceeds 7 m s(-1), which is merely half of that in traditional structure. Temperature difference inside battery module is smaller with the rise of inlet air velocity. Moreover, temperature consistency could be improved by increasing the radius of fan or setting the outlet on the right above of battery module.
机译:温度和温度一致性对锂离子电池的有效性能和热安全具有重要影响。巨大的温度不一致可能导致过度充电和过度放电的行为,以便它提高了火灾和热失控的风险。通过实验测量在绝热条件下放电期间的升温和发热速率。基于通过实验获得的结论和数据,由COMSOL Multiphysics 5.3a(R)构建了传统和优化的平行冷却结构的有限元模型。同时,研究并讨论了并行风冷结构中流动不均匀性的问题和优化设计的冷却性能。具有传统冷却结构的电池模块内部观察到明显的温度不一致。在模块底部添加风扇有助于衰减最高温度并有效地提高温度一致性。当入口空气的速度超过7m S(-1)时,平均温度差保持在约1.4℃,这仅仅是传统结构中的一半。电池模块内的温差随着入口空气速度的升高而较小。此外,通过增加风扇半径或在上面的电池模块的右上方​​设置出口可以提高温度一致性。

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