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Lithium-Ion Battery Remaining Useful Life Prognostics Using Data-Driven Deep Learning Algorithm

delete2018-10-01
delete22
PRE
AI
L
Lyu Li *
Y
Yuchen Song
Y
Yu Peng
刘大同 (Datong Liu)
DOI:10.1109/PHM-Chongqing.2018.00193delete
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Abstract

Abstract

En 中文
As lithium-ion battery is widely applied, lithiumion battery reliability has received widespread attention in recent years. Remaining useful life (RUL) prediction is an effective way to ensure the battery reliability. The loss of actual capacity of a battery is usually used to reflect the battery RUL. However, the capacity degradation is complex and non-linear. For the longer capacity prediction horizon, the accuracy of traditional methods becomes lower which would cause error in RUL prognosis. To address this problem, this paper proposed a deep belief networks (DBN) method for lithium-ion battery RUL prediction. The proposed method is trained with historical battery capacity data. With the powerful fitting ability of DBN, the proposed method can track capacity degradation and predict the RUL. Experiments are conducted based on commercial lithium-ion batteries. The results show that the proposed method has high accuracy in capacity fade prediction and RUL prediction.
Keywords:
Lithium-ion battery
RUL estimation
Deep belief networks
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

P
PROGNOSTICS AND SYSTEM HEALTH MANAGEMENT CONFERENCE
IF:
0
Papers:
7
Citations:
0

Organization

H
harbin institute of technology
Scholars:
8.0W
Papers: 6.6W
Citations: 66
Cited Papers

Cited Papers

State-of-health monitoring of lithium-ion batteries in electric vehicles by on-board internal resistance estimation
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PREAI
errRemmlinger, Juergen; Buchholz, Michael; Meiler, Markus; Bernreuter, Peter; Dietmayer, Klaus
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Lithium and lithium ion batteries for applications in microelectronic devices: A review
err2015-07-01
err490
errOAAI
errWang, Yuxing; Liu, Bo; Li, Qiuyan; Cartmell, Samuel; Ferrara, Seth; Deng, Zhiqun Daniel; Xiao, Jie
errShare
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Remaining useful life estimation of engineered systems using vanilla LSTM neural networks
err2018-01-01
err611
PREAI
errWu, Yuting; Yuan, Mei; Dong, Shaopeng; Lin, Li; Liu, Yingqi
errShare
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