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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Trend Shift Detection in Jet Engine Gas Path Measurements Using Cascaded Recursive Median Filter With Gradient and Laplacian Edge Detector
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Trend Shift Detection in Jet Engine Gas Path Measurements Using Cascaded Recursive Median Filter With Gradient and Laplacian Edge Detector

机译:带有梯度和拉普拉斯边缘检测器的级联递归中值滤波器在喷气发动机气路测量中的趋势变化检测

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Trend shift detection is posed as a two-part problem: filtering of the gas turbine measurement deltas followed by the use of edge detection algorithms. Measurement deltas are deviations in engine gas path measurements from a "good" baseline engine and are a key health signal used for gas turbine performance diagnostics. The measurements used in this study are exhaust gas temperature, low rotor speed, high rotor speed and fuel flow, which are called cockpit measurements and are typically found on most commercial jet engines. In this study, a cascaded recursive median (RM) filter, of increasing order, is used for the purpose of noise reduction and outlier removal, and a hybrid edge detector that uses both gradient and Laplacian of the cascaded RM filtered signal are used for the detection of step change in the measurements. Simulated results with test signals indicate that cascaded RM filters can give a noise reduction of more than 38% while preserving the essential features of the signal. The cascaded RM filter also shows excellent robustness in dealing with outliers, which are quite often found in gas turbine data, and can cause spurious trend detections. Suitable thresholding of the gradient edge detector coupled with the use of the Laplacian edge detector for cross checking can reduce the system false alarms and missed detection rate. Further reduction in the trend shift detection false alarm and missed detection rate can be achieved by selecting gas path measurements with higher signal-to-noise ratios.
机译:趋势转移检测存在两个问题:对燃气轮机测量增量进行过滤,然后使用边缘检测算法。测量增量是与“良好”基准发动机相比在发动机气路测量中的偏差,并且是用于燃气轮机性能诊断的关键健康信号。本研究中使用的测量值是废气温度,低转子转速,高转子转速和燃料流量,这被称为座舱测量值,通常在大多数商用喷气发动机中都可以找到。在这项研究中,为了降低噪声和离群值,使用了递增级联级联递归中值(RM)滤波器,而对于级联RM滤波信号,使用了同时使用梯度和拉普拉斯算子的混合边缘检测器。检测测量中的阶跃变化。测试信号的模拟结果表明,级联RM滤波器可以在保持信号基本特征的同时将噪声降低38%以上。级联RM过滤器在处理异常值时也显示出出色的鲁棒性,这些异常值在燃气轮机数据中经常发现,并且可能导致虚假趋势检测。适当使用梯度边缘检测器的阈值,结合使用拉普拉斯边缘检测器进行交叉检查,可以减少系统错误警报和漏检率。通过选择具有较高信噪比的气路测量值,可以进一步减少趋势偏移检测错误警报和漏检率。

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