Data-driven fault detection, isolation and estimation of aircraft gas turbine engine actuator and sensors

E. Naderi, K. Khorasani
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引用次数: 65

Abstract

In this work, a data-driven fault diagnosis and estimation scheme is proposed and developed specifically for aircraft gas turbine engine actuator and sensors. The proposed fault detection, isolation and estimations filters are directly constructed by using only the system I/O data at each operating point of the engine. The associated system Markov parameters are estimated by using the frequency response data that are then used for the direct construction of the fault detection, isolation and estimation filters. Our proposed scheme therefore does not require a priori knowledge of the system linear model or its number of poles and zeros at each operating point. We have shown through simulations that desirable fault detection, isolation and estimation performance metrics can be achieved.
基于数据驱动的飞机燃气涡轮发动机执行器和传感器故障检测、隔离与估计
本文提出并开发了一种针对飞机燃气涡轮发动机作动器和传感器的数据驱动故障诊断与估计方案。所提出的故障检测、隔离和估计滤波器仅使用发动机每个工作点的系统I/O数据直接构建。利用频率响应数据估计相关系统马尔可夫参数,然后将其用于直接构建故障检测、隔离和估计滤波器。因此,我们提出的方案不需要系统线性模型的先验知识或其在每个工作点的极点和零点的数量。我们已经通过仿真表明,可以实现理想的故障检测、隔离和估计性能指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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