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A Multi-Objective Optimization of Imperfect Preventive Maintenance Policy for Dependent Competing Risk Systems With Hidden Failure

机译:具有隐性故障的相关竞争风险系统的不完善预防性维护策略的多目标优化

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This paper studies a multi-objective maintenance optimization embedded within the imperfect preventive maintenance (PM) for one single-unit system subject to the dependent competing risks of degradation wear and random shocks. We consider two kinds of random shocks in the system: 1) fatal shocks that will cause the system to fail immediately, and 2) nonfatal shocks that will increase the system degradation level by a certain cumulative shock amount. Also, an improvement factor in the form of quasi-renewal sequences is introduced to modulate the imperfect maintenance by raising the degradation critical threshold proportionally. Finally, the two decision variables for maintenance scheduling, the number of PMs to replacement, and the initial PM interval, are determined by simultaneously maximizing the system asymptotic availability, and minimizing the system cost rate using the fast elitist non-dominated Sorting Genetic Algorithm (NSGA-II). Sensitivity analysis for two parameters, including imperfect PM degree, and quasi-renewal coefficient of imperfect PM interval, is performed to provide insight into the behavior of the proposed maintenance policies. The comparison results show that the optimization solution is consistent between one-objective and multi-objective optimization, and the Pareto frontier for the maintenance optimization problem can provide alternative solutions according to customer preference and resource constraints.
机译:本文研究了嵌入到一个单元系统的不完善预防性维护(PM)中的多目标维护优化,该优化受制于退化磨损和随机冲击的相关竞争风险。我们考虑系统中的两种随机冲击:1)致命冲击,它将立即导致系统故障; 2)非致命冲击,它将以一定的累积冲击量增加系统降级的程度。另外,引入了准更新序列形式的改进因子,以通过按比例提高退化临界阈值来调制不完善的维护。最后,通过使用快速精英非支配排序遗传算法同时最大化系统渐近可用性并最小化系统成本率,来确定维护计划的两个决策变量,即要更换的PM数量和初始PM间隔。 NSGA-II)。对两个参数(包括不完善的PM度和不完善的PM间隔的准更新系数)进行敏感性分析,以深入了解拟议维护策略的行为。比较结果表明,该优化解决方案在单目标优化和多目标优化之间是一致的,维护优化问题的帕累托边界可以根据客户的偏好和资源约束提供替代解决方案。

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