Synchronous microdeformation and first derivative dynamic measurement based on laser shearing speckle interferometry

Xiao-shan Huang, Ji Liu, Lixia Yu
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Abstract

This paper presents a multi-carrier frequency spatial phase shift digital shearing speckle interferometry method which is capable of the first derivative and microdeformation synchronously. The dynamic deformation of the composite defects is carried out by thermal loading.The shear speckle interferometry is used to locate the defect position and holography was used to measure microdeformation of the defect. In Michelson shearing device, an optical fiber is used to introduce a reference beam,two shear images form a shear fringe pattern, and the reference beam introduced is combined with one of the shear patterns to generate a hologram. The spatial phase shifting technique is used to obtain the frequency domain after Fourier transform, holograms and shearograms are obtained at the same time. In this paper, the direct synchronous measurement of microdeformation and first derivative of deformation is realized without the need of numerical integration process. Finally, the experimental results show that the proposed method can quickly obtain the shear fringe image, which represents the first derivative of the deformation to position the defect in the composite material, and the hologram is filtered, unwrapped and 3D displayed to obtain accurate micron scale deformation values.
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基于激光剪切散斑干涉的同步微变形和一阶导数动态测量
提出了一种多载波空间移相数字剪切散斑干涉测量方法,该方法能同时实现一阶导数和微变形。复合材料缺陷的动态变形是通过热载荷进行的。采用剪切散斑干涉法定位缺陷位置,采用全息术测量缺陷微变形。在迈克尔逊剪切装置中,使用光纤引入参考光束,两个剪切图像形成剪切条纹图案,引入的参考光束与其中一个剪切图案组合生成全息图。在傅里叶变换后,利用空间相移技术获得频域,同时得到全息图和剪切图。本文实现了微变形和变形一阶导数的直接同步测量,而无需进行数值积分处理。最后,实验结果表明,该方法可以快速获得代表变形一阶导数的剪切条纹图像,用于定位复合材料中的缺陷,并对全息图进行滤波、解包裹和三维显示,以获得精确的微米尺度变形值。
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