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Degradation data analysis and remaining useful life estimation: A review on Wiener-process-based methods
- Source :
- European Journal of Operational Research. 271:775-796
- Publication Year :
- 2018
- Publisher :
- Elsevier BV, 2018.
-
Abstract
- Degradation-based modeling methods have been recognized as an essential and effective approach for lifetime and remaining useful life (RUL) estimations for various health management activities that can be scheduled to ensure reliable, safe, and economical operation of deteriorating systems. As one of the most popular stochastic modeling methods, the previous several decades have witnessed remarkable developments and extensive applications of Wiener-process-based methods. However, there is no systematic review particularly focused on this topic. Therefore, this paper reviews recent modeling developments of the Wiener-process-based methods for degradation data analysis and RUL estimation, as well as their applications in the field of prognostics and health management (PHM). After a brief introduction of conventional Wiener-process-based degradation models, we pay particular attention to variants of the Wiener process by considering nonlinearity, multi-source variability, covariates, and multivariate involved in the degradation processes. In addition, we discuss the applications of the Wiener-process-based models for degradation test design and optimal decision-making activities such as inspection, condition-based maintenance (CBM), and replacement. Finally, we highlight several future challenges deserving further studies.
- Subjects :
- Estimation
0209 industrial biotechnology
021103 operations research
Information Systems and Management
General Computer Science
Health management system
Computer science
Condition-based maintenance
0211 other engineering and technologies
02 engineering and technology
Management Science and Operations Research
Industrial and Manufacturing Engineering
Field (computer science)
symbols.namesake
020901 industrial engineering & automation
Wiener process
Risk analysis (engineering)
Modeling and Simulation
symbols
Prognostics
Reliability (statistics)
Degradation (telecommunications)
Subjects
Details
- ISSN :
- 03772217
- Volume :
- 271
- Database :
- OpenAIRE
- Journal :
- European Journal of Operational Research
- Accession number :
- edsair.doi...........eb809197c82d1d2e945f2e26ae0eac62
- Full Text :
- https://doi.org/10.1016/j.ejor.2018.02.033