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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Lithium-Ion Battery Parameters and State of Charge Joint Estimation Using Bias Compensation Least Squares and the Alternate Algorithm
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Lithium-Ion Battery Parameters and State of Charge Joint Estimation Using Bias Compensation Least Squares and the Alternate Algorithm

机译:使用偏置补偿最小二乘和替代算法的锂离子电池参数和充电联合估计状态

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For safe and efficient operation of electric vehicles (EVs), battery management system is essential. Nevertheless, a challenge lying in battery management systems is how to obtain an algorithm for state of charge (SOC) estimation that has both high accuracy and low computational cost. For this purpose, the battery parameters and SOC joint estimation algorithm based on bias compensation least squares and alternate (BCLS-ALT) algorithm are proposed in this paper. The battery model parameters are identified online using the bias compensation least squares (BCLS), while the SOC is estimated applying the alternate (ALT) algorithm, which can switch the computational logic between H-infinity filter (HIF) and ampere-hour integral (AHI) to improve the computational efficiency and accuracy. The experimental results show that the accuracy of the SOC estimated by the BCLS-ALT algorithm is the highest, and the computational efficiency is also high, with the switching threshold SOCALT being set to 25%. Despite the 20% initial error and the 10% current drift, the proposed BCLS-ALT algorithm can obtain high accuracy and robustness of SOC estimation under different ambient temperatures and dynamic load profiles.
机译:为了安全有效的电动车辆(EVS),电池管理系统至关重要。尽管如此,符合电池管理系统的挑战是如何获得具有高精度和低计算成本的充电状态(SOC)估计算法。为此目的,本文提出了基于偏置补偿最小二乘和替代(BCLS-ALT)算法的基于偏置补偿的电池参数和SOC联合估计算法。电池型参数使用偏置补偿最小二乘(BCLS)在线在线识别,而SOC估计应用备用(ALT)算法,可以在H-Infinity过滤器(HIF)之间切换计算逻辑和安培小时( AHI)提高计算效率和准确性。实验结果表明,BCLS-ALT算法估计的SOC的精度最高,计算效率也很高,交换阈值Socalt被设置为25%。尽管初始误差和10%的电流漂移,但所提出的BCLS-ALT算法可以在不同的环境温度和动态载荷型材下获得高精度和SOC估计的鲁棒性。

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