Modified EKF Algorithm Considering Aging to Estimate the SOC of Lithium-ion Battery

The State of Charge (SOC) of lithium battery is one of the basic parameters of battery management system (BMS). The accurate estimation of SOC is the basis of BMS reliability and accuracy. In order to improve the estimation accuracy of SOC, an estimation method considering aging of lithium battery S...

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Bibliographic Details
Main Authors: YU Zhi-long, LI Long-jun, WEI Kang
Format: Article
Language:zho
Published: Harbin University of Science and Technology Publications 2022-08-01
Series:Journal of Harbin University of Science and Technology
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Online Access:https://hlgxb.hrbust.edu.cn/#/digest?ArticleID=2125
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Summary:The State of Charge (SOC) of lithium battery is one of the basic parameters of battery management system (BMS). The accurate estimation of SOC is the basis of BMS reliability and accuracy. In order to improve the estimation accuracy of SOC, an estimation method considering aging of lithium battery SOC was proposed. The Thevenin second-order model was selected as the equivalent model of lithium battery, and the parameters were identified and verified according to the actual data. Then, considering the influence of battery aging on model parameters and actual capacity, the improved Extended Kalman Filter (EKF) algorithm was added with total capacity calibration and forgetting factor, and the improved EKF algorithm was used to accurately estimate the SOC of the battery. Experimental results show that the accuracy of SOC estimation is greatly improved by adding capacity calibration and model aging genetic factors on the basis of EKF.
ISSN:1007-2683