首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering >Fault detection and isolation in aircraft gas turbine engines. Part 1: underlying concept
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Fault detection and isolation in aircraft gas turbine engines. Part 1: underlying concept

机译:飞机燃气涡轮发动机中的故障检测和隔离。第1部分:基本概念

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摘要

Degradation monitoring is of paramount importance to safety and reliability of aircraft operations and also for timely maintenance of its critical components. This two-part paper formulates and validates a novel methodology of degradation monitoring of aircraft gas turbine engines with emphasis on detection and isolation of incipient faults. In a complex system with multiple interconnected components (e.g. an aircraft engine), fault isolation becomes a crucial task because of possible input–output and feedback interactions among the individual components. This paper, which is the first of two parts, presents the underlying concepts of fault detection and isolation (FDI) in complex dynamical systems. The FDI algorithms are formulated in the setting of symbolic dynamic filtering (SDF) that has been recently reported in literature. The underlying concept of SDF is built upon the principles of symbolic dynamics, statistical pattern recognition, and information theory. In addition to abrupt large faults, the SDF-based algorithms are capable of detecting slowly evolving anomalies (i.e. deviations from the nominal behaviour) based on analysis of time series data of critical process variables of different engine components. The second part, which is a companion paper, validates the concept, laid out in the first part, on the simulation test bed of a generic two-spool turbofan aircraft engine model for detection and isolation of incipient faults.
机译:降级监控对于飞机运行的安全性和可靠性以及及时维护其关键部件至关重要。这份由两部分组成的论文提出并验证了一种新型的航空燃气涡轮发动机退化监测方法,其重点是对早期故障的检测和隔离。在具有多个相互连接的组件(例如飞机引擎)的复杂系统中,由于各个组件之间可能存在输入,输出和反馈交互,因此隔离故障成为一项至关重要的任务。本文是两部分的第一部分,介绍了复杂动态系统中故障检测和隔离(FDI)的基本概念。 FDI算法是在最近已在文献中报道的符号动态过滤(SDF)设置中制定的。 SDF的基本概念建立在符号动力学,统计模式识别和信息论的原理之上。除了突然的大故障外,基于SDF的算法还能够基于对不同发动机组件的关键过程变量的时间序列数据进行分析,从而检测出缓慢发展的异常现象(即与正常行为的偏差)。第二部分是随附的论文,它验证了在第一部分中提出的概念,该概念在用于检测和隔离初期故障的通用双涡旋涡扇飞机发动机模型的模拟测试台上进行了验证。

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