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Influence of connecting plate resistance upon LiFePO4 battery performance

机译:连接板电阻对LiFePO4电池性能的影响

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摘要

The primary challenge to the commercialization of any electric vehicle is the performance management of the battery pack. The performance of the battery module is influenced by the resistance of the intercell connecting plates (ICCP) and the position of the battery module posts (BMP). A new battery cell model based on the Matlab-Simscape platform is developed and validated using a constant current discharge test and a pulse discharge test. Taken the ICCP as resistors, a parallel-connected battery module model (PCBMM) is established based on the battery cell model. The effect of inter-cell connecting plate resistance (ICCPR) on the battery module performance is simulated. Simulation results indicate that the ICCPR causes unevenly current flow among the battery cells. The battery cell directly connected to the BMP is the first one reaching its end-of-discharge (EOD) voltage. Also, it presents the lowest terminal voltage and state of charge (SOC) during the discharge process. The battery cell directly connected to the BMP goes into deep discharge state more easily. Therefore, it performs higher aging rate. The aging of the battery cell causes over-discharge of the adjacent battery cells. The reasonable ratio of the ICCPR to the battery ohmic internal resistance (OIR) is discussed for different average currents and different numbers of battery cells, to guarantee the maximum SOC evaluation error within a target value of 0.05. (C) 2015 Elsevier Ltd. All rights reserved.
机译:任何电动汽车商业化的主要挑战是电池组的性能管理。电池模块的性能受电池间连接板(ICCP)的电阻和电池模块接线柱(BMP)位置的影响。基于恒流放电测试和脉冲放电测试,开发并验证了基于Matlab-Simscape平台的新型电池模型。以ICCP作为电阻,基于电池模型建立了并联电池模块模型(PCBMM)。模拟了电池间连接板电阻(ICCPR)对电池模块性能的影响。仿真结果表明,ICCPR会导致电流在电池单元之间不均匀地流动。直接连接到BMP的电池是第一个达到放电终止(EOD)电压的电池。同样,它在放电过程中呈现最低的端电压和充电状态(SOC)。直接连接到BMP的电池更容易进入深度放电状态。因此,它具有更高的老化率。电池单元的老化导致相邻电池单元的过放电。对于不同的平均电流和不同数量的电池,讨论了ICCPR与电池欧姆内部电阻(OIR)的合理比率,以确保最大SOC评估误差在目标值0.05之内。 (C)2015 Elsevier Ltd.保留所有权利。

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