2020
DOI: 10.1051/e3sconf/202019402023
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State-of-charge Estimation of Lithium-ion Battery Based Online Parameter Identification

Abstract: Accurately estimating the state of charge (SOC) of lithium-ion is very important to improving the dynamic performance and energy utilization efficiency. In order to reduce the influence of model parameters and system coloured noise on SOC estimation accuracy, this paper proposes the SOC estimation based on online identification. Based on the mixed simplified electrochemical model, the forgetting factor recursive least squares (FFRLS) method was used to identify the parameters online, and the SOC estimation was… Show more

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