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Improved nonlinear model for electrode voltage-current relationship for more consistent online battery system identification

机译:改进的电极电压-电流关系非线性模型,用于更一致的在线电池系统识别

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An improved nonlinear model for the electrode voltage-current relationship for online battery system identification is proposed. In contrast with the traditional linear-circuit model, the new approach employs a more accurate model of the battery electrode nonlinear steady-state voltage drop based on the Butler-Volmer equation. The new form uses an inverse hyperbolic sine approximation for the Butler-Volmer equation. Kalman filter-based system identification is proposed for determining the model parameters based on the measured voltage and current. Both models have been implemented for lead-acid batteries and exercised using test data from a Corbin Sparrow electric vehicle. A comparison of predictions for the two models demonstrates the improvements that can be achieved using the new nonlinear model. The results include improved battery voltage predictions that provide the basis for more accurate state-of-function (SOF) readings.
机译:提出了一种改进的用于在线电池系统识别的电极电压 - 电流关系的非线性模型。与传统的线性电路模型相比,新方法采用基于管道 - Volmer方程的电池电极非线性稳态电压降的更准确的模型。新表格使用Butler-Volmer方程的反向双曲正弦逼近。提出了基于卡尔曼基于滤波器的系统识别,用于基于测量的电压和电流确定模型参数。两种模型已经为铅酸电池实施,并使用来自Corbin Sparrow电动车辆的测试数据进行。对这两个模型的预测的比较演示了使用新的非线性模型可以实现的改进。结果包括改进的电池电压预测,为更准确的功能状态(SOF)读数提供了基础。

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