Component rearrangement and system replacement for a system with stochastic degradation processes

Consider a system of multiple functionally-interchangeable components. These components degrade following non-homogeneous stochastic processes that are related to different workloads, usage rates, or operating environment. The unbalanced degradation levels of components affect the overall performanc...

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Published in:Reliability engineering & system safety Vol. 213; p. 107786
Main Authors: Zhu, Xiaoyan, Hao, Yaqian
Format: Journal Article
Language:English
Published: Barking Elsevier Ltd 01.09.2021
Elsevier BV
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ISSN:0951-8320, 1879-0836
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Abstract Consider a system of multiple functionally-interchangeable components. These components degrade following non-homogeneous stochastic processes that are related to different workloads, usage rates, or operating environment. The unbalanced degradation levels of components affect the overall performance of the system. This paper studies a preventive maintenance policy based on component rearrangement, and the goal is to prolong the useful time of a system before its replacement or overhaul. In this model, the optimal component rearrangement is planned to execute at optimal time. The stochastic degradation models and reliability functions that incorporate the component rearrangement are built. Then a mixed binary nonlinear programming model is established to optimize the component rearrangement plan, rearrangement time, and system replacement time. The models are derived for each of the Wiener process, gamma process, and inverse Gaussian process, which are three most widely used stochastic degradation processes. The specified models are derived for k-out-of-n:F, series–parallel, and parallel–series systems. Furthermore, a hybrid approach is proposed that integrates permutation-based heuristic global search for solving a combinatorial subproblem and nonlinear optimization method for solving constrained continuous subproblems. The analytical results and numerical experiments demonstrate the efficiency of the models and solution approach and provide the insights of the component-rearrangement based maintenance policy. •Studied the preventive maintenance policy considering component rearrangement.•Derived the component degradation and reliability function models.•Established a mixed integer nonlinear program model to maximize system lifetime.•Proposed a hybrid approach with a permutation-based heuristic global search.•Provided guidance for the application of component rearrangement in practice.
AbstractList Consider a system of multiple functionally-interchangeable components. These components degrade following non-homogeneous stochastic processes that are related to different workloads, usage rates, or operating environment. The unbalanced degradation levels of components affect the overall performance of the system. This paper studies a preventive maintenance policy based on component rearrangement, and the goal is to prolong the useful time of a system before its replacement or overhaul. In this model, the optimal component rearrangement is planned to execute at optimal time. The stochastic degradation models and reliability functions that incorporate the component rearrangement are built. Then a mixed binary nonlinear programming model is established to optimize the component rearrangement plan, rearrangement time, and system replacement time. The models are derived for each of the Wiener process, gamma process, and inverse Gaussian process, which are three most widely used stochastic degradation processes. The specified models are derived for k-out-of-n:F, series–parallel, and parallel–series systems. Furthermore, a hybrid approach is proposed that integrates permutation-based heuristic global search for solving a combinatorial subproblem and nonlinear optimization method for solving constrained continuous subproblems. The analytical results and numerical experiments demonstrate the efficiency of the models and solution approach and provide the insights of the component-rearrangement based maintenance policy. •Studied the preventive maintenance policy considering component rearrangement.•Derived the component degradation and reliability function models.•Established a mixed integer nonlinear program model to maximize system lifetime.•Proposed a hybrid approach with a permutation-based heuristic global search.•Provided guidance for the application of component rearrangement in practice.
Consider a system of multiple functionally-interchangeable components. These components degrade following non-homogeneous stochastic processes that are related to different workloads, usage rates, or operating environment. The unbalanced degradation levels of components affect the overall performance of the system. This paper studies a preventive maintenance policy based on component rearrangement, and the goal is to prolong the useful time of a system before its replacement or overhaul. In this model, the optimal component rearrangement is planned to execute at optimal time. The stochastic degradation models and reliability functions that incorporate the component rearrangement are built. Then a mixed binary nonlinear programming model is established to optimize the component rearrangement plan, rearrangement time, and system replacement time. The models are derived for each of the Wiener process, gamma process, and inverse Gaussian process, which are three most widely used stochastic degradation processes. The specified models are derived for k-out-of-n:F, series–parallel, and parallel–series systems. Furthermore, a hybrid approach is proposed that integrates permutation-based heuristic global search for solving a combinatorial subproblem and nonlinear optimization method for solving constrained continuous subproblems. The analytical results and numerical experiments demonstrate the efficiency of the models and solution approach and provide the insights of the component-rearrangement based maintenance policy.
ArticleNumber 107786
Author Zhu, Xiaoyan
Hao, Yaqian
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Keywords Discrete particle swarm optimization
Component rearrangement
Stochastic degradation process
Functionally-interchangeable components
k-out-of-n
F system
Language English
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Snippet Consider a system of multiple functionally-interchangeable components. These components degrade following non-homogeneous stochastic processes that are related...
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StartPage 107786
SubjectTerms Combinatorial analysis
Component rearrangement
Component reliability
Discrete particle swarm optimization
F system
Functionally-interchangeable components
Gaussian process
Hybrid systems
k-out-of-n
Nonlinear programming
Optimization
Permutations
Preventive maintenance
Reliability engineering
Stochastic degradation process
Stochastic processes
Title Component rearrangement and system replacement for a system with stochastic degradation processes
URI https://dx.doi.org/10.1016/j.ress.2021.107786
https://www.proquest.com/docview/2553568236
Volume 213
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