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A simplified fractional order impedance model and parameter identification method for lithium-ion batteries

机译:锂离子电池的简化分数阶阻抗模型和参数辨识方法

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摘要

Identification of internal parameters of lithium-ion batteries is a useful tool to evaluate battery performance, and requires an effective model and algorithm. Based on the least square genetic algorithm, a simplified fractional order impedance model for lithium-ion batteries and the corresponding parameter identification method were developed. The simplified model was derived from the analysis of the electrochemical impedance spectroscopy data and the transient response of lithium-ion batteries with different states of charge. In order to identify the parameters of the model, an equivalent tracking system was established, and the method of least square genetic algorithm was applied using the time-domain test data. Experiments and computer simulations were carried out to verify the effectiveness and accuracy of the proposed model and parameter identification method. Compared with a second-order resistance-capacitance (2-RC) model and recursive least squares method, small tracing voltage fluctuations were observed. The maximum battery voltage tracing error for the proposed model and parameter identification method is within 0.5%; this demonstrates the good performance of the model and the efficiency of the least square genetic algorithm to estimate the internal parameters of lithium-ion batteries.
机译:锂离子电池内部参数的识别是评估电池性能的有用工具,并且需要有效的模型和算法。基于最小二乘遗传算法,建立了锂离子电池的简化分数阶阻抗模型和相应的参数辨识方法。简化模型来自对电化学阻抗谱数据的分析以及具有不同电荷状态的锂离子电池的瞬态响应。为了识别模型的参数,建立了等效的跟踪系统,并使用时域测试数据应用最小二乘遗传算法。通过实验和计算机仿真,验证了所提模型和参数辨识方法的有效性和准确性。与二阶电阻电容(2-RC)模型和递归最小二乘法比较,观察到的跟踪电压波动较小。该模型和参数辨识方法的最大电池电压跟踪误差在0.5%以内;这证明了该模型的良好性能以及最小二乘遗传算法估计锂离子电池内部参数的效率。

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