摘要
It is important to predict the capacity of lithium-ion battery for future cycles to assess its health condition and to estimate remaining useful life (RUL). Particle filter approaches are widely applied into the estimation of battery capacity. However, after several iterations, the degeneracy and impoverishment of particles can cause unreliable and inaccurate prediction results in particle filter (PF). In this paper, a fusion method is proposed by integrating unscented Kalman filter (UKF) and minimum sampling variance resampling (MSVR) into the standard PF for RUL prediction of batteries. The UKF is employed to generate the proposal distribution of particles, which is used by PF to calculate the weights of particles. Next, the MSVR algorithm is introduced for performing resampling procedure to improve the performance. Finally, the performance of the proposed method is validated and compared to other predictors with four different battery datasets from NASA. According to the results, the integrated method has high reliability and prediction accuracy.
| 源语言 | 英语 |
|---|---|
| 主期刊名 | PHM 2016 - Proceedings of the Annual Conference of the Prognostics and Health Management Society |
| 编辑 | Matthew J. Daigle, Anibal Bregon |
| 出版商 | Prognostics and Health Management Society |
| 页 | 230-236 |
| 页数 | 7 |
| ISBN(电子版) | 9781936263059 |
| 出版状态 | 已出版 - 2016 |
| 活动 | 2016 Annual Conference of the Prognostics and Health Management Society, PHM 2016 - Denver, 美国 期限: 3 10月 2016 → 6 10月 2016 |
出版系列
| 姓名 | Proceedings of the Annual Conference of the Prognostics and Health Management Society, PHM |
|---|---|
| 卷 | 2016-October |
| ISSN(印刷版) | 2325-0178 |
会议
| 会议 | 2016 Annual Conference of the Prognostics and Health Management Society, PHM 2016 |
|---|---|
| 国家/地区 | 美国 |
| 市 | Denver |
| 时期 | 3/10/16 → 6/10/16 |
联合国可持续发展目标
此成果有助于实现下列可持续发展目标:
-
可持续发展目标 7 经济适用的清洁能源
学术指纹
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