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Electronic shearography: current capabilities, potential limitations, and future possibilities for industrial nondestructive inspection

机译:电子剪切成像:工业无损检测的当前能力,潜在限制和未来可能性

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摘要

Image-shearing speckle pattern interferometry, more commonly referred to as ‘shearography’, is a full-field, laser-based interferometric technique first developed for applications in experimental mechanics [1,2]. Shearography is sensitive to derivatives of the out-of-plane surface displacement of a body under load, as opposed to other full-field methods such as holographic interferometry and conventional speckle pattern interferometry, which typically contour the surface displacement directly [3]. The early shearography experiments used high-resolution photographic film to record images of the laser speckle patterns. In contrast to traditional film-based techniques, electronic shearography uses an electronic camera for image recording [4]. This technology, commercially available for the past several years, has received much interest within the NDE community because of its potential for rapid, non-contacting optical inspection of large areas. While there are advantages and disadvantages specific to either imaging medium, electronic shearography is the clear choice for industrial inspection because image acquisition and processing is accomplished at a video frame rate of 30 Hz to produce shearographic fringe patterns in real time. Real-time inspection is not possible with film- based shearography, which requires time-consuming development of the filmplate and optical high pass filtering for readout of the fringe patterns.
机译:图像剪切斑点图案干涉测量法,通常称为“剪切成像”,是一种基于激光的全场干涉测量技术,最初是为实验力学应用而开发的[1,2]。剪切成像对物体在负载下的平面外表面位移的导数很敏感,这与其他全场方法(例如全息干涉法和常规散斑图案干涉法)不同,后者通常直接勾勒出表面位移[3]。早期的剪切成像实验使用高分辨率照相胶片记录激光散斑图案的图像。与传统的基于胶片的技术相比,电子剪切成像使用电子相机进行图像记录[4]。在过去的几年中,这种技术已经在市场上销售,由于其在大面积区域进行快速,非接触式光学检查的潜力,在NDE界引起了广泛的关注。尽管每种成像介质都有其优点和缺点,但电子剪切成像是工业检查的明智选择,因为图像采集和处理是在30 Hz的视频帧速率下完成的,以实时生成剪切条纹图案。基于胶片的剪切成像无法进行实时检查,这需要耗时的胶片板开发和光学高通滤波以读取条纹图案。

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