SOC estimation of lead–carbon battery based on GA-MIUKF algorithm

Author:

Wang Lu,Wang Feng,Xu Liju,Li Wei,Tang Junfeng,Wang Yanyan

Abstract

AbstractThe paper proposes a SOC (State of Charge) estimation method for lead–carbon batteries based on the GA-MIUKF algorithm. The GA-MIUKF algorithm combines GA (Genetic Algorithm) for global search and optimization with the MI-UKF (Multi-innovation Unscented Kalman Filter) algorithm for estimating the SOC of lead–carbon batteries. By establishing an equivalent circuit model for the battery, the GA is employed to globally search and optimize the battery model parameters and the noise variance parameters in the MI-UKF algorithm. Comparative analyses with the UKF (Unscented Kalman Filter) algorithms and MI-UKF algorithms reveal that the SOC estimation method based on the GA-MIUKF algorithm yields more accurate results for lead–carbon battery SOC estimation, with an average estimation error of 2.0%. This highlights the efficacy of the proposed approach in enhancing SOC estimation precision.

Funder

Yunnan Provincial Department of Education Science Research Fund Project

Publisher

Springer Science and Business Media LLC

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. State of charge estimation of lithium batteries: Review for equivalent circuit model methods;Measurement;2024-08

2. Design of Battery Management System Based on FOMIAUKF Algorithm;2024 IEEE 2nd International Conference on Power Science and Technology (ICPST);2024-05-09

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