全光谱空间在单传感器光学动态测量中的应用

Y. Fu, M. Guo, P. Phua
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引用次数: 0

摘要

近年来,基于干涉法的动态测量已广泛应用于工业领域,用于振动或连续变形的非接触测量。在动态测量中,传统的相位提取方法,即移相技术,无论是高速相机还是单像素光电探测器都难以实现。因此,谱分析成为提取瞬态相的主要方法。由于高速摄像机和光电探测器的发展,现在可以在光谱的不同位置对不同的信息进行编码。本文将介绍在动态测量中充分利用频谱空间的两种应用。一种是使用高速相机的双波长图像平面数字全息,另一种是使用单个探测器的空间编码多光束激光多普勒振动测量。前一种实验在光谱的不同部分编码两个波长的信息。两个相位图可以从一个全息图中检索。这两种相位图可以产生具有等效波长的新相位分布,从而大大降低相机的捕获率。后一种应用对不同频率范围内不同点的振动信息进行编码。实验验证了使用单个光电探测器同时对2×5矩阵进行精确振动测量的可能性。结果表明,充分利用光谱空间,将大大提高光动态测量的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Utilization of full spectrum space in single-sensor-based optical dynamic measurement
In recent years, interferometry-based dynamic measurement has been widely used in industrial area for non-contact measurement of vibration or continuous deformation. In dynamic measurement, the traditional phase extraction method, phase shifting technique, is not easily accomplished with either hig h-speed camera or single-pixel photo detector. Hence spectrum analysis becomes a predominant method to extract tran sient phases. Due to the development of high-speed cameras and photo detectors, now it is possible to encode different info rmation at separated positions in spectrum. In this paper, we will present two applications on fully utilizing spectrum space in dynamic measurement. One is a dual-wavelength image-plane digital holography using high-speed camera, and another is a spatially encoded multi-beam laser Doppler vibrometry using a single detector. The former experiment encodes information of two wavelengths at different parts of the spectrum. Two phase maps can be retrieved from one hologram. These two phase maps can generate a new phase distribution with an equivalent wavelength, so that the capturing rate of the camera can be reduced dramatically. The latter application encodes vibration information of different points on separated frequency ranges. The experiment verifies it is possible to do a precise vibration measurement on a 2×5 matrix simultaneously using a single photo detector. These results show with fully utilization of spectrum space, the capability of optical dynamic measurement will be tremendously improved.
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