首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Novel Rotating Machinery Structural Faults Signal Adaptive Multiband Filtering and Automatic Diagnosis
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Novel Rotating Machinery Structural Faults Signal Adaptive Multiband Filtering and Automatic Diagnosis

机译:新型旋转机械结构故障信号自适应多频段滤波与自动诊断

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摘要

To realize an automatic diagnosis of rotating machinery structure faults, this paper presents a novel fault diagnosis model based on adaptive multiband filter and stacked autoencoders (SAEs). First, to solve the problem where the actual rotating frequency and its harmonics cannot be accurately extracted in engineering applications, an improved adaptive multiband filtering method is designed. This method takes the theoretical rotating frequency as the search center, extracts the maximum within the positive and negative deviation as the actual rotating frequency, and sets a threshold according to the actual value to realize multiband filtering. This method can effectively remove background noise and accurately extract the actual rotating frequency and its harmonics. Second, an unsupervised SAE multiclassification model is established to realize an automatic diagnosis of fault types. This model can automatically extract the in-depth features of the filtered signal and improve the fault classification accuracy. Third, engineering and comparative experiments were carried out to verify the effectiveness and superiority of this model. Results show that the proposed automatic diagnosis model can extract the characteristic components abundantly and accurately recognize rotating machinery structural faults.
机译:为了实现旋转机械结构故障的自动诊断,该文提出了一种基于自适应多波段滤波器和堆叠自编码器(SAE)的故障诊断模型。首先,针对工程应用中实际旋转频率及其谐波无法准确提取的问题,设计了一种改进的自适应多波段滤波方法;该方法以理论旋转频率为搜索中心,提取正负偏差内的最大值作为实际旋转频率,并根据实际值设置阈值,实现多波段滤波。该方法能有效去除背景噪声,准确提取实际旋转频率及其谐波。其次,建立无监督SAE多分类模型,实现故障类型的自动诊断;该模型可以自动提取滤波信号的深度特征,提高故障分类精度。第三,通过工程和对比实验验证了该模型的有效性和优越性。结果表明,所提出的自动诊断模型能够丰富地提取特征成分,准确识别旋转机械结构故障。

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