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New semi-analytical model approach of the current distribution within parallel-connected lithium-ion cells

机译:并联锂离子电池内电流分布的新半分析模型方法

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摘要

Automotive batteries contain a high number of parallel- and serial-connected cells to fulfill the energy and power requirements of electric vehicles. Due to current, State of Charge (SoC) and temperature differences among the lithium-ion cells, caused by cell production and battery design tolerances, the power and energy of the battery is limited to the most stressed cell. In order to provide the best battery performance, regarding fast charging, recuperation and acceleration of the electric vehicle, the current distribution within the parallel-connected cells has to be estimated onboard. This article provides a semi-analytical model of the current distribution, with low parametrization and computational effort sufficient for an implementation in the Battery Management System (BMS). The model is validated by measurements of two parallel-connected cells with constant and dynamic current stress. The model output fit well to the experimental data with a related Root Mean Square Deviation (RMSD) of sigma(RMSD) approximate to 0.5 % (constant stress) and of sigma(RMSD) approximate to 1 % (dynamic stress). Further, the model mathematically describes the affects of the Open Circuit Voltage (OCV) bending on the current distribution among parallel cells, which closes an important lack of knowledge. This correlation explains the characteristic current cross at 0.2 = SoC = 0.45 and the peak of the current difference at the end of a constant discharge stress.
机译:汽车电池包含大量平行和串联电池,以满足电动车辆的能量和功率要求。由于电池生产和电池设计公差引起的锂离子电池的电流(SoC)和温度差异,电池的功率和能量仅限于最强调的细胞。为了提供最佳的电池性能,关于电动车辆的快速充电,回收和加速度,必须在船上估计并联电池内的电流分布。本文提供了电流分布的半分析模型,具有较低的参数化和计算工作,足以用于电池管理系统(BMS)中的实现。通过具有恒定和动态的电流应力的两个平行连接电池的测量来验证该模型。模型输出良好地适合具有σ(RMSD)的相关根部均方偏差(RMSD)的实验数据近似为0.5%(恒定应力)和σ(RMSD)近似为1%(动态应力)。此外,数学上的模型描述了弯曲在并行电池之间的电流分布上的开路电压(OCV)的影响,这封闭了重要知识。该相关性地解释了0.2℃的特征电流十字。持续放电应力结束时的电流差的峰值。

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