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A statistical evaluation of risk priority numbers in failure modes and effects analysis applied to the prediction of complex systems.

机译:对故障模式下风险优先级数字的统计评估以及对复杂系统的预测的影响分析。

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摘要

Complex systems such as military aircraft and naval ships are difficult to cost effectively maintain. Frequently, large-scale maintenance of complex systems (i.e., a naval vessel) is based on the reduction of the system to its base subcomponents and the use of manufacturer-suggested, time-directed, preventative maintenance, which is augmented during the systems lifecycle with predictive maintenance which assesses the system's ability to perform its mission objectives. While preventative maintenance under certain conditions can increase reliability, preventative maintenance systems are often costly, increase down time, and allow for maintenance-induced failures, which may decrease the reliability of the system (Ebeling, 1997). This maintenance scheme ignores the complexity of the system it tries to maintain. By combining the base components or subsystems into a larger system, and introducing human interaction with the system, the complexity of the system creates a unique entity that cannot be completely understood by basing predictability of the system to perform tasks on the reduction of the system to its subcomponents.; This study adds to the scholarly literature by developing a model, based on the traditional failure modes and effects analysis commonly used for research and development projects, to capture the effects of the human interaction with the system. Based on the ability of personnel assigned to operate and maintain the system, the severity of the system failure on the impact on the metasystems ability to perform its mission and the likelihood of the event of the failure to occur.; Findings of the research indicate that the human interaction with the system, in as far as the ability of the personnel to repair and maintain the system, is a vital component in the ability to predict likelihood of the system failure and the prioritization of the risk of system failure, may be adequately captured for analysis through use of expert opinion elicitation. The use of the expert's opinions may provide additional robustness to the modeling and analysis of system behavior in the event that failure occurs.
机译:诸如军用飞机和海军舰船的复杂系统很难有效地维护。通常,复杂系统(即海军舰船)的大规模维护是基于将系统缩减为基本子组件,并使用制造商建议的,有时间限制的预防性维护,这种维护在系统生命周期中得到了加强通过预测性维护来评估系统执行其任务目标的能力。虽然在某些情况下进行预防性维护可以提高可靠性,但预防性维护系统通常成本高昂,停机时间长,并可能导致维护引发的故障,这可能会降低系统的可靠性(Ebeling,1997)。这种维护方案忽略了它试图维护的系统的复杂性。通过将基本组件或子系统组合到一个更大的系统中,并引入与系统的人机交互,系统的复杂性创建了一个独特的实体,通过将系统的可预测性基于系统的简化来执行任务,就无法完全理解该实体。其子组件。通过基于通常用于研究和开发项目的传统故障模式和影响分析,开发一个模型来捕获人与系统交互的影响,从而为研究文献添加更多的内容。根据分配的操作和维护系统人员的能力,系统故障的严重性,对元系统执行其任务的能力的影响以及发生故障事件的可能性。研究结果表明,就人员修复和维护系统的能力而言,人与系统的交互是预测系统故障可能性和确定风险的优先级的重要组成部分。系统故障,可以通过使用专家意见引诱来充分捕获以进行分析。如果发生故障,专家意见的使用可以为系统行为的建模和分析提供额外的鲁棒性。

著录项

  • 作者

    Dean, Anthony Winston.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Engineering System Science.; Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 系统科学;一般工业技术;
  • 关键词

  • 入库时间 2022-08-17 11:45:04

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