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Identification of the critical depth-of-cut through a 2D image of the cutting region resulting from taper cutting of brittle materials

机译:通过脆性材料锥切割产生的切割区域的2D图像识别临界深度通过切割区域的2D图像

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摘要

An automatic identification method for obtaining the critical depth-of-cut (DoC) of brittle materials with nanometric accuracy and sub-nanometric uncertainty is proposed in this paper. With this method, a two-dimensional (2D) microscopic image of the taper cutting region is captured and further processed by image analysis to extract the margin of generated micro-cracks in the imaging plane. Meanwhile, an analytical model is formulated to describe the theoretical curve of the projected cutting points on the imaging plane with respect to a specified DoC during the whole cutting process. By adopting differential evolution algorithm-based minimization, the critical DoC can be identified by minimizing the deviation between the extracted margin and the theoretical curve. The proposed method is demonstrated through both numerical simulation and experimental analysis. Compared with conventional 2D- and 3D-microscopic-image-based methods, determination of the critical DoC in this study uses the envelope profile rather than the onset point of the generated cracks, providing a more objective approach with smaller uncertainty.
机译:本文提出了一种自动识别方法,用于获得具有纳米精度和亚纳米非确定性的脆性材料的临界深度(DOC)。利用这种方法,通过图像分析捕获并进一步处理锥形切割区域的二维(2D)微观图像,以提取成像平面中产生的微裂纹的余量。同时,配制分析模型以描述在整个切削过程中相对于指定的DOC的成像平面上的投影切割点的理论曲线。通过采用基于差分演进算法的最小化,可以通过最小化提取的边距和理论曲线之间的偏差来识别关键的文档。通过数值模拟和实验分析证明了所提出的方法。与基于常规的2D和3D微观图像的方法相比,该研究中的关键文件的确定使用包络轮廓而不是产生的裂缝的发作点,提供更小的不确定性的方法。

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