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Preventive maintenance and replacement scheduling: Models and algorithms.

机译:预防性维护和更换计划:模型和算法。

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摘要

Preventive maintenance is a broad term that encompasses a set of activities aimed at improving the overall reliability and availability of a system. Preventive maintenance involves a basic trade-off between the costs of conducting maintenance/replacement activities and the cost savings achieved by reducing the overall rate of occurrence of system failures. Designers of preventive maintenance schedules must weigh these individual costs in an attempt to minimize the overall cost of system operation. They may also be interested in maximizing the system reliability, subject to some sort of budget constraint.;In this dissertation, we present a complete discussion about the problem definition and review the literature. We develop new nonlinear mixed-integer optimization models, solve them by standard nonlinear optimization algorithms, and analyze their computational results. In addition, we extend the optimization models by considering engineering economy features and reformulate them as a multi-objective optimization model. We optimize this model by generational and steady state genetic algorithms as well as by a simulated annealing algorithm and demonstrate the computational results obtained by implementation of these algorithms. We perform a sensitivity analysis on the parameters of the optimization models and present a comparison between exact and metaheuristic algorithms in terms of computational efficiency and accuracy. Finally, we present a new mathematical function to model age reduction and improvement factor parameter used in optimization models. In addition, we develop a practical procedure to estimate the effect of maintenance activity on failure rate and effective age of multi component systems.
机译:预防性维护是一个广义术语,包含旨在提高系统整体可靠性和可用性的一系列活动。预防性维护涉及在进行维护/更换活动的成本与通过降低系统故障的整体发生率而节省的成本之间的基本权衡。预防性维护计划的设计者必须权衡这些单独的成本,以最大程度地降低系统运行的总体成本。在某种预算约束下,他们也可能对最大化系统可靠性感兴趣。本文对问题的定义进行了完整的讨论,并复习了文献。我们开发了新的非线性混合整数优化模型,通过标准的非线性优化算法对其进行求解,并分析了它们的计算结果。此外,我们通过考虑工程经济特征来扩展优化模型,并将其重新表述为多目标优化模型。我们通过世代和稳态遗传算法以及模拟退火算法优化了该模型,并演示了通过实施这些算法获得的计算结果。我们对优化模型的参数进行了敏感性分析,并就计算效率和准确性提出了精确算法和元启发式算法之间的比较。最后,我们提出了一种新的数学函数来建模优化模型中使用的年龄减少和改善因素参数。此外,我们开发了一种实用的程序来估计维护活动对多组件系统的故障率和有效寿命的影响。

著录项

  • 作者

    Moghaddam, Kamran S.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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