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Reliability modeling and optimal random preventive maintenance policy for parallel systems with damage self-healing

机译:具有损伤自我修复的并行系统的可靠性建模和最优随机预防性维护策略

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摘要

Materials with intrinsic self-healing phenomenon possess the ability to heal in response to external random shocks. Introducing a recovery factor to quantitatively measure the damage self-recovery efficiency, this paper designs a self-healing mechanism corresponding to both damage load and shock arrival numbers for a parallel redundant system consisting of multiple non-identical components. From the actual engineering perspective, each shock arriving on the system selectively affects one component or more but not necessarily all units in parallel, and consequently, random shocks are categorized according to their sizes, attributes and affected components. This study investigates novel reliability models and schedules optimal preventive maintenance policies, in which the closed-form reliability quantities are derived analytically and the optimum preventive replacement interval is demonstrated theoretically. In addition, a Nelder-Mead downhill simplex method is introduced to seek the optimal replacement age in minimizing the long-run average maintenance cost rate for the condition system failure distribution is rather complex. A micro-electro-mechanical system (MEMS) whose constitutional materials are integrated by microcrystalline silicon, where polymer binders with self-healing capability are always synthesized, is designed to verify the results we obtained numerically, illustrating the significance of considering damage self-healing phenomena.
机译:具有固有自我修复现象的材料具有响应外部随机冲击而进行修复的能力。通过引入恢复因子来定量测量损伤的自我恢复效率,本文针对由多个不同组件组成的并行冗余系统,设计了一种与损伤载荷和冲击到达次数相对应的自我修复机制。从实际工程角度来看,到达系统的每种冲击都会有选择地影响一个或多个组件,但不一定会并行影响所有单元,因此,随机冲击会根据其大小,属性和受影响的组件进行分类。本研究调查了新颖的可靠性模型并制定了最佳的预防性维护策略,其中分析性地得出了封闭形式的可靠性量,并从理论上证明了最佳的预防性更换间隔。另外,引入了Nelder-Mead下坡单纯形法,以寻找最佳更换年龄,以使条件系统故障分布相当复杂的长期平均维护成本率最小化。设计了一种微电子机械系统(MEMS),其结构材料由微晶硅集成在一起,在该微电子机械系统中始终合成具有自愈能力的聚合物粘合剂,旨在验证我们在数值上获得的结果,从而说明考虑损伤自愈的重要性现象。

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