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A Likelihood Ratio-Based Approach to Bleed Valve Event Detection in Gas Turbine Engines

机译:基于燃气涡轮发动机的止血阀事件检测方法的似然比

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Bleed valves are widely used in gas turbine engines (GTEs) for airflow control to prevent compressor surge so as to improve the overall GTE performance and handling. Bleed valve fault detection is a challenging task due to the inhospitable environment that the bleed valve is located and the limited available sensor signals that can be used for detection. The problem is investigated in this paper and a Kalman filtering-based likelihood ratio approach is proposed for bleed valve event detection where only the pressure line signal and the scheduled bleed valve demand signals that are currently available in a GTE are used for detection. With the proposed approach, two models are developed for tracking the change in pressure signal, one with the scheduled bleed valve demand signals as input and one without. Two Kalman filters are designed based on these two models and the likelihood functions of the pressure observations are then evaluated with the state estimates from these Kalman filters. The bleed event detection is eventually achieved via the likelihood ratio test. The developed method is used for detecting bleed events using real flight data and the results are very promising.
机译:出血阀广泛用于气涡轮机发动机(GTE),用于气流控制,以防止压缩机浪涌,以提高整体GTE性能和处理。出血阀故障检测是由于漏洞阀所定位的居住环境以及可用于检测的有限可用传感器信号,这是一个具有挑战性的任务。在本文中研究了问题,并且提出了一种基于卡尔曼滤波的似然比方法,用于排出阀门事件检测,其中仅用于GTE中当前可用的压力线信号和调度的排出阀需求信号被用于检测。利用所提出的方法,开发出用于跟踪压力信号变化的两种型号,其中一个具有预定的排气阀需求信号作为输入和一个没有。基于这两个模型设计了两个卡尔曼滤波器,然后使用这些卡尔曼滤波器的状态估计进行了压力观测的似然函数。最终通过似然比测试实现出血事件检测。开发的方法用于使用真实飞行数据检测流血事件,结果非常有前途。

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