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基于鲸鱼优化算法和多核相关向量机的锂离子电池荷电状态估计

State of charge estimation for lithium-ion battery based on whale optimization algorithm and multi-kernel relevance vector machine.

作者信息

Chen Kui, Zhou Shuyuan, Liu Kai, Gao Guoqiang, Wu Guangning

机构信息

School of Electrical Engineering, Southwest Jiaotong University, Chengdu, China.

Tangshan Institute, Southwest Jiaotong University, Tangshan, China.

出版信息

J Chem Phys. 2023 Mar 14;158(10):104110. doi: 10.1063/5.0139376.

Abstract

Lithium-ion batteries are key elements of electric vehicles and energy storage systems, and their accurate State of Charge (SOC) estimation is momentous for battery energy management, safe operation, and extended service life. In this paper, the Multi-Kernel Relevance Vector Machine (MKRVM) and Whale Optimization Algorithm (WOA) are used to estimate the SOC of lithium-ion batteries under different operating conditions. In order to better learn and estimate the battery SOC, MKRVM is used to establish a model to estimate lithium-ion battery SOC. WOA is used to automatically adjust and optimize weights and kernel parameters of MKRVM to improve estimation accuracy. The proposed model is validated with three lithium-ion batteries under different operating conditions. In contrast to other optimization algorithms, WOA has a better optimization effect and can estimate the SOC more accurately. In contrast to the single kernel function, the proposed multi-kernel function greatly improves the precision of the SOC estimation model. In contrast to the traditional method, the WOA-MKRVM has a higher precision of SOC estimation.

摘要

锂离子电池是电动汽车和储能系统的关键部件,其准确的荷电状态(SOC)估计对于电池能量管理、安全运行以及延长使用寿命至关重要。本文采用多核相关向量机(MKRVM)和鲸鱼优化算法(WOA)来估计不同运行条件下锂离子电池的SOC。为了更好地学习和估计电池SOC,使用MKRVM建立估计锂离子电池SOC的模型。使用WOA自动调整和优化MKRVM的权重和核参数,以提高估计精度。所提出的模型在不同运行条件下用三个锂离子电池进行了验证。与其他优化算法相比,WOA具有更好的优化效果,能够更准确地估计SOC。与单核函数相比,所提出的多核函数大大提高了SOC估计模型的精度。与传统方法相比,WOA-MKRVM具有更高的SOC估计精度。

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