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Optimal Selective Maintenance Strategy for Multi-State Systems Under Imperfect Maintenance

机译:不完善维护下多状态系统的最优选择性维护策略

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摘要

Many systems are required to perform a series of missions with finite breaks between any two consecutive missions. In such a case, one of the most widely used maintenance policies is a selective maintenance in which a subset of feasible maintenance actions is chosen to be performed with the aim at achieving the subsequent mission success under limited maintenance resources. Traditional selective maintenance optimization reported in the literature only focuses on binary state systems. Most systems in industrial applications, however, have more than two states in the deterioration process. In this work, a selective maintenance policy for multi-state systems (MSS) consisting of binary state elements is investigated. Taking the imperfect maintenance quality into consideration, the Kijima model is reviewed, and a cost-maintenance quality relationship which considers the age reduction factor as a function in terms of maintenance cost is established. Moreover, with the assistance of the universal generating function (UGF) method, the probability of the repaired MSS successfully completing the subsequent mission is formulated. In place of enumerative methods, a genetic algorithm (GA) is employed to solve the complicated optimization problem where both multi-state systems, and imperfect maintenance models are taken into account. The effectiveness of the proposed method is demonstrated via a case study of a power station coal transportation system. Finally, a comparative analysis between the strategies with and without considering imperfect maintenance is conducted, and it is concluded that incorporating imperfect maintenance quality into selective maintenance achieves better outcomes.
机译:需要许多系统来执行一系列任务,而在任何两个连续任务之间都有有限的间隔。在这种情况下,最广泛使用的维护策略之一是选择性维护,其中选择一部分可行的维护操作来执行,目的是在有限的维护资源下实现后续任务的成功。文献中报道的传统的选择性维护优化仅关注于二进制状态系统。但是,工业应用中的大多数系统在退化过程中具有两个以上的状态。在这项工作中,研究了由二进制状态元素组成的多状态系统(MSS)的选择性维护策略。考虑到不完美的维修质量,对Kijima模型进行了审查,并建立了以维修成本为基础考虑年龄减少因素的成本-维修质量关系。此外,借助通用生成函数(UGF)方法,可以确定修复后的MSS成功完成后续任务的概率。代替枚举方法,采用遗传算法(GA)解决了同时考虑多状态系统和不完善维护模型的复杂优化问题。通过对电厂输煤系统的案例研究证明了该方法的有效性。最后,在考虑和不考虑不完全维护的策略之间进行了比较分析,得出的结论是,将不完善的维护质量纳入选择性维护中可获得更好的结果。

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