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Selective Maintenance Optimization for Multi-State Systems Operating in Dynamic Environments

机译:动态环境中运行的多状态系统的选择性维护优化

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This paper deals with selective maintenance of a multistate series system working under time-varying environmental (or operational) conditions. The environmental conditions are evolving dynamically during the mission and influence the degradation rate of each component and the whole system. We assume that the environmental conditions vary as a continuous-time Markov chain. The components are maintained during the maintenance break between two consecutive missions performing maintenance actions: do-nothing, imperfect, and perfect maintenance. The selective maintenance optimization problem is used to find the optimal maintenance strategy in order to maximize the expected system reliability in the next mission subjected to maintenance time and budget limitations. Monte Carlo simulation is used to evaluate the reliability of the system at the end of the next mission considering variable environmental/operational conditions. An example is provided to demonstrate the importance of considering the uncertainty in environmental (or operational) conditions.
机译:本文涉及在时变环境(或运行)条件下工作的多状态串联系统的选择性维护。在执行任务期间,环境条件正在动态变化,并影响每个组件和整个系统的退化率。我们假设环境条件随着连续时间马尔可夫链的变化而变化。在执行两次维护任务的两次连续任务之间的维护间隔期间,对组件进行维护:无所事事,不完善和完美的维护。选择性维护优化问题用于找到最佳维护策略,以便在受到维护时间和预算限制的下一次任务中最大化预期的系统可靠性。考虑到变化的环境/运行条件,在下一次任务结束时使用蒙特卡洛模拟评估系统的可靠性。提供了一个示例来说明考虑环境(或操作)条件不确定性的重要性。

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