系统故障排除的最优任务排序

Jun Liu
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引用次数: 2

摘要

系统故障的自动排除是现代航空航天设备的重要组成部分。效率和准确性的提高有助于显著降低维护成本。普惠公司的预测健康管理(PHM)小组负责为联合攻击战斗机(JSF)推进系统开发故障检测、隔离和适应的自动化系统。在此上下文中出现的一个基本问题是:给定一列被先验地确定为可能导致故障症状的可疑组件,那么最佳故障排除任务分配策略是什么?本文介绍了一种优化任务排序的方法。我们表明,正确的策略是根据一个容易计算的度量(我们称之为平均效用函数)对任务进行排序,该度量考虑到平均故障排除时间或成本,或两者的组合,这取决于被认为是最关键的。对此给出了数学证明。本文所提出的方法也可以作为故障排除策略应用于任何其他机械健康管理系统
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal task ordering for troubleshooting systems faults
Automated troubleshooting of system faults is an essential element of modern aerospace equipment. The increased efficiency and accuracy helps in dramatically lowering maintenance costs. The Prognostic Health Management (PHM) group at Pratt & Whitney is responsible for developing automated systems for fault detection, isolation, and accommodation for the Joint Strike Fighter (JSF) propulsion system. A fundamental question that arises in this context is the following: Given a list of suspected components that have been identified a priori as possible causes for failure symptom(s), what is the optimal troubleshooting task assignment strategy? This paper introduces an approach to optimal task ordering. We show that the correct strategy is to order the tasks based on an easily calculated metric - which we call the mean utility function - that takes into consideration the mean troubleshooting time, or cost, or a combination of the two, depending on what is considered to be most critical. A mathematical proof is given for this. The approach shown in the paper can also be applied, as a troubleshooting strategy, for any other machinery health management system
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