School of Mechanical Engineering, Hebei University of Technology, Tianjin, 300130, China.
Centre for Precision Technologies, University of Huddersfield, Huddersfield, HD13DH, UK.
Sci Rep. 2017 Aug 31;7(1):10293. doi: 10.1038/s41598-017-11014-5.
With the advent of intelligent manufacturing, phase measuring deflectometry (PMD) has been widely studied for the measurement of the three-dimensional (3D) shape of specular objects. However, existing PMDs cannot measure objects having discontinuous specular surfaces. This paper presents a new direct PMD (DPMD) method that measures the full-field 3D shape of complicated specular objects. A mathematical model is derived to directly relate an absolute phase map to depth data, instead of the gradient. Two relevant parameters are calibrated using a machine vision-based method. On the basis of the derived model, a full-field 3D measuring system was developed. The accuracy of the system was evaluated using a mirror with known positions along an accurate translating stage. The 3D shape of a monolithic multi-mirror array having multiple specular surfaces was measured. Experimental results show that the proposed DPMD method can obtain the full-field 3D shape of specular objects having isolated and/or discontinuous surfaces accurately and effectively.
随着智能制造的出现,相移轮廓术(PMD)已被广泛研究用于测量镜面物体的三维(3D)形状。然而,现有的 PMD 无法测量具有不连续镜面表面的物体。本文提出了一种新的直接 PMD(DPMD)方法,用于测量复杂镜面物体的全场 3D 形状。推导了一个数学模型,将绝对相位图直接与深度数据相关联,而不是梯度。使用基于机器视觉的方法校准了两个相关参数。基于推导的模型,开发了一个全场 3D 测量系统。使用具有已知位置的镜子在精确平移台上进行评估,评估了系统的准确性。测量了具有多个镜面的整体多镜阵列的 3D 形状。实验结果表明,所提出的 DPMD 方法可以准确有效地获取具有孤立和/或不连续表面的镜面物体的全场 3D 形状。