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A Non-Probabilistic Metric Derived From Condition Information for Operational Reliability Assessment of Aero-Engines

机译:从条件信息得出的非概率度量,用于航空发动机的运行可靠性评估

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摘要

The aero-engine is the heart of an airplane. Operational reliability assessment that aims to identify the reliability level of the aero-engine in the service phase is of great significance for improving flight safety. Traditionally, reliability assessment is carried out by statistical analysis on large failure samples. Because the operational reliability of a specific aero-engine is an individual problem lacking statistical sample data, traditional reliability assessment methods may be insufficient to assess the operational reliability of an individual aero-engine. The operational states of the aero-engine can be identified by its condition information. Changes in the condition information reflect the performance degradation of the aero-engine. Aiming at the assessment of the operational reliability of individual aero-engines, a novel similarity index (SI) is proposed by analyzing the condition information from the fault-free state, and the current state. A condition subspace is first obtained by kernel principal component analysis (KPCA). Subspace similarity is then represented by subspace angles, i.e., kernel principal angles (KPAs). The cosine function is finally utilized as a mapping function to transform the subspace angles into a similarity index. The index can be used as a non-probabilistic metric for operational reliability assessment. Only the condition information is needed for computation of the similarity index, thus it can be performed conveniently for online assessment. The effectiveness of the proposed method is validated by three case studies regarding the health assessment of aero-engines subjected to system-level and component-level degradation. The positive results demonstrate that the proposed SI is an effective metric for operational reliability assessment of individual aero-engines.
机译:航空发动机是飞机的心脏。旨在确定航空发动机在使用阶段的可靠性水平的运行可靠性评估对于提高飞行安全性具有重要意义。传统上,可靠性评估是通过对大型故障样本进行统计分析来进行的。因为特定航空发动机的运行可靠性是缺少统计样本数据的单个问题,所以传统的可靠性评估方法可能不足以评估单个航空发动机的运行可靠性。航空发动机的运行状态可以通过其状态信息来识别。状态信息的变化反映了航空发动机的性能下降。为了评估单个航空发动机的运行可靠性,通过分析来自无故障状态和当前状态的状态信息,提出了一种新的相似性指数(SI)。首先通过内核主成分分析(KPCA)获得条件子空间。然后,子空间相似性由子空间角度(即内核主角(KPA))表示。余弦函数最终被用作映射函数,以将子空间角度转换为相似性索引。该指数可用作运行可靠性评估的非概率性指标。计算相似性指数只需要条件信息,因此可以方便地进行在线评估。该方法的有效性通过关于系统级和组件级退化的航空发动机健康评估的三个案例研究得到了验证。积极的结果表明,所提出的SI是评估单个航空发动机的运行可靠性的有效指标。

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