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Recurrence quantification analysis applied to sequential speckle images of machined surface for detection of chatter in turning

机译:递归量化分析应用于加工表面的顺序斑点图像,以检测车削中的颤动

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Based on the discovery that cutting signals contain fractal patterns, a recurrence plot based methodology called recurrence quantification analysis (RQA) is applied to the time series constructed using information contained in speckle images of machined surface for chatter detection in turning operation. Variations in the roughness of machined surface created by virtue of chatter, manifests as changes in the statistical properties of speckle images of the surface when examined frame by frame along the axis of the machined part. A significant parameter of such images, the frame wise average intensity value is extracted separately and arranged in sequence for constructing the time series. Since this time series is found to be non-stationary in nature and due to the fact that the turning operation is low dimensional chaotic, the nonlinear time series analysis methodology of RQA is used for analyzing the time series. The present study ascertains that the derived time series do have a deterministic origin and it further investigates the sensitivity of the different RQA variables to chatter cutting by analyzing this time series and demonstrates that this methodology is capable of capturing the transition from regular cutting to the chatter cutting.
机译:基于切削信号包含分形图案的发现,将基于递归图的方法称为递归量化分析(RQA)应用于时间序列,该时间序列使用加工表面的斑点图像中包含的信息构建,用于车削操作中的颤动检测。由于颤动而产生的加工表面粗糙度的变化表现为当沿着加工零件的轴逐帧检查表面的斑点图像的统计特性时的变化。这些图像的重要参数是逐帧平均强度值,分别提取并按顺序排列以构建时间序列。由于发现该时间序列本质上是非平稳的,并且由于转弯操作是低维混沌的,因此使用RQA的非线性时间序列分析方法来分析时间序列。本研究确定得出的时间序列确实具有确定的起源,并且通过分析该时间序列进一步研究了不同RQA变量对颤动切削的敏感性,并证明了该方法能够捕获从常规切削到颤动的过渡切割。

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