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LPV model-based robust diagnosis of flight actuator faults

机译:基于LPV模型的飞行执行器故障鲁棒诊断

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摘要

A linear parameter-varying (LPV) model-based synthesis, tuning and assessment methodology is developed and applied for the design of a robust fault detection and diagnosis (FDD) system for several types of flight actuator faults such as jamming, runaway, oscillatory failure, or loss of efficiency. The robust fault detection is achieved by using a synthesis approach based on an accurate approximation of the nonlinear actuator-control surface dynamics via an LPV model and an optimal tuning of the free parameters of the FDD system using multi-objective optimization techniques. Real-time signal processing is employed for identification of different fault types. The assessment of the FDD system robustness has been performed using both standard Monte-Carlo methods as well as advanced worst-case search based optimization-driven robustness analysis. A supplementary industrial validation performed on the AIRBUS actuator test bench for the monitoring of jamming, confirmed the satisfactory performance of the FDD system in a true industrial setting.
机译:开发了一种基于线性可变参数(LPV)模型的综合,调整和评估方法,并将其用于针对几种类型的飞行执行器故障(如干扰,失控,振荡故障)的鲁棒故障检测和诊断(FDD)系统的设计。 ,或效率降低。通过使用基于LPV模型的非线性执行器控制表面动力学的精确近似以及使用多目标优化技术对FDD系统的自由参数进行最佳调整的综合方法,可以实现鲁棒的故障检测。实时信号处理用于识别不同的故障类型。 FDD系统鲁棒性的评估已使用标准的蒙特卡洛方法以及基于最坏情况搜索的基于优化驱动的鲁棒性分析进行了评估。在AIRBUS执行器测试台上进行的补充工业验证(用于监视干扰)证实了FDD系统在真实工业环境中的令人满意的性能。

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