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Remaining Useful Life Prediction of Lithium-ion Batteries Based on Wiener Process Under Time-Varying Temperature Condition.

Authors :
Xu, Xiaodong
Tang, Shengjin
Yu, Chuanqiang
Xie, Jian
Han, Xuebing
Ouyang, Minggao
Source :
Reliability Engineering & System Safety. Oct2021, Vol. 214, pN.PAG-N.PAG. 1p.
Publication Year :
2021

Abstract

• Arrhenius based stochastic degradation rate model • A capacity conversion path from random temperature to reference temperature • A new battery aging model under time-varying temperature condition • A novel online RUL prediction method under Bayesian framework Time-varying temperature condition has a significant impact on discharge capacity and aging law of lithium-ion battery. Consequently, a novel remaining useful life (RUL) prediction method for lithium-ion battery under time-varying temperature condition is developed in this paper. Firstly, a stochastic degradation rate model based on Arrhenius temperature model is proposed, and an interesting battery capacity conversion path from random temperature condition to reference temperature condition is established. Secondly, the aging model of lithium-ion battery under time-varying temperature condition is developed based on Wiener process, and a two-step unbiased estimation method based on maximum likelihood estimation (MLE) combined with genetic algorithm (GA) is proposed. Next, the random parameter is online updated under Bayesian framework. Then the probability density function (PDF) of the RUL for lithium-ion battery under time-varying temperature condition is derived. Finally, a case study is implemented to verify the effectiveness, and the results show that the proposed prediction method has higher accuracy and smaller uncertainty. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09518320
Volume :
214
Database :
Academic Search Index
Journal :
Reliability Engineering & System Safety
Publication Type :
Academic Journal
Accession number :
151007324
Full Text :
https://doi.org/10.1016/j.ress.2021.107675