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Electrostatic Monitoring of Gas Path Debris for Aero-engines

机译:航空发动机气路碎屑的静电监测

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摘要

We present advanced condition monitoring technology based on electrostatic induction for detecting the debris in aero-engines exhaust gas. We also discuss the key technologies related to electrostatic monitoring systems, such as sensing technology, signal processing, feature extraction, and abnormal particle identification. The finite element method and data fitting method are applied to analyze the sensing characteristics of the sensor. We apply empirical mode decomposition and independent component analysis to effectively remove the noise mixed in with the monitoring signal. Certain diagnostic features extracted from the de-noised signal are presented here. A knowledge-acquisition model based on rough sets theory and artificial neural networks is constructed to identify the abnormal particles. The experiment results show the effectiveness of the methods proposed in this paper, and provide some guidelines for future research in this field for the aviation industry.
机译:我们介绍了基于静电感应的先进状态监测技术,用于检测航空发动机废气中的碎屑。我们还将讨论与静电监测系统相关的关键技术,例如传感技术,信号处理,特征提取和异常颗粒识别。应用有限元法和数据拟合法分析传感器的传感特性。我们采用经验模态分解和独立分量分析来有效地去除与监视信号混合的噪声。这里介绍了从降噪信号中提取的某些诊断功能。建立了基于粗糙集理论和人工神经网络的知识获取模型来识别异常粒子。实验结果证明了本文提出的方法的有效性,并为航空业在该领域的未来研究提供了一些指导。

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