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Unballanced Performance of Parallel Connected Large Format Lithium Ion Batteries for Electric Vehicle Application

机译:平行连接大型锂离子电池的不平衡性能用于电动车辆应用

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The integration of cells that exhibit differing electrical characteristics, such as variations in energy capacity and internal resistance can degrade the overall performance of the energy storage system (ESS) when those cells are aggregated into single battery pack. When cells are connected electrically in parallel, such variations can lead to significant individual differences in battery load current, state of charge (SOC) and heat generation. Further, if consideration is given to small variations in cell interconnection resistance, the detrimental effect on load imbalance is amplified. Given that cell resistance is known to be a function of both SOC and temperature, the impact of the imbalance is compounded as the performance of cells further diverge under load. During extended periods of excitation, variations in cell depth of discharge (DOD) and the occurrence of temperature gradients across the parallel connection will accelerate cell ageing and, if unmanaged, may present safety concerns such as the onset of thermal runaway. In this paper the impact of varied SOC and temperature on the overall performance of the ESS with parallel connected cells has been investigated. The results highlight that 8% variation in the initial SOC can result in a current difference of 62% among the cells, while a temperature variation of 8°C results in a current deviation of 14%. Moreover, it was found that the interconnection resistance can significantly increase the inhomogeneity.
机译:表现出不同电气特性的细胞的集成,例如能量容量和内阻的变化可以在这些细胞聚集到单个电池组中时会降低能量存储系统(ESS)的整体性能。当细胞与电池相连地连接时,这种变化可能导致电池负载电流,充电状态(SoC)和发热的显着各个差异。此外,如果给予细胞互连电阻的小变化考虑,则扩增对负载不平衡的不利影响。鉴于已知细胞抗性是SOC和温度的函数,因此在负载下进一步发散的细胞的性能,对不平衡的影响变化。在延长的激发期间,放电细胞深度的变化(DOD)和跨越平行连接的温度梯度的发生将加速细胞老化,如果不受约束,则可能呈现安全问题,例如热失控的发作。在本文中,研究了各种SOC和温度对具有平行连接电池的ESS整体性能的影响。结果突出显示初始SoC的8%变化可以导致电池中的62%的电流差,而8℃的温度变化导致电流偏差为14%。此外,发现互连电阻可以显着增加不均匀性。

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