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Stator current based indicators for bearing fault detection in synchronous machine by statistical frequency selection

机译:基于统计频率选择的基于定子电流的同步电机轴承故障指示器

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The aim of this paper is to present some indicators developed for efficient detection of bearing defaults in high speed synchronous machines using a stator current analysis. These actuators are used in an air conditioning fan for aeronautic applications. The signatures of the bearing defects appear through an increase in amplitude of specific current harmonics multiples of the rotation frequency. From an experimental comparison between a healthy fan and another with damaged bearings, an automatic frequency selection is performed to identify the frequency ranges for which the energy is the most sensitive to the considered faults. From these frequencies, several strategies are investigated to propose a suitable indicator for the bearing fault detection. A post-processing algorithm is then developed and tested for different measurements, different types of faults and different operating points, to ensure the robustness of the proposed method.
机译:本文的目的是介绍一些为通过定子电流分析有效检测高速同步电机轴承故障而开发的指标。这些执行器用于航空应用的空调风扇中。轴承缺陷的特征通过旋转频率的特定电流谐波倍数幅度的增加而出现。根据健康风扇与轴承损坏的风扇的实验比较,将执行自动频率选择,以识别能量对所考虑故障最敏感的频率范围。从这些频率出发,研究了几种策略,以提出一种适用于轴承故障检测的指示器。然后开发后处理算法,并针对不同的测量,不同类型的故障和不同操作点进行测试,以确保所提出方法的鲁棒性。

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