• Laser & Optoelectronics Progress
  • Vol. 60, Issue 8, 0811015 (2023)
Xiehui Geng1, Jingming Song1, Lei Zhang2, Chao Zuo3, and Mingjie Sun1,*
Author Affiliations
  • 1School of Instrument Science and Optoelectronic Engineering, Beijing University of Aeronautics and Astronautics, Beijing 100191, China
  • 2The Eleventh Research Institute of China Electronics Technology Group, Beijing 100015, China
  • 3School of Electronic and Optical Engineering, Nanjing University of Science and Technology, Nanjing 210094, Jiangsu , China
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    DOI: 10.3788/LOP223404 Cite this Article Set citation alerts
    Xiehui Geng, Jingming Song, Lei Zhang, Chao Zuo, Mingjie Sun. Three-Dimensional Measurement System of Fringe-Structured Light Based on High-Speed LED Array[J]. Laser & Optoelectronics Progress, 2023, 60(8): 0811015 Copy Citation Text show less

    Abstract

    Projection speed of a digital light processing projector is low, which limits the three-dimensional (3D) measurement speed of structured light. To solve this problem, a 3D measurement system of fringe-structured light based on a high-speed light emitting diode (LED) array is proposed using the LED array with terahertz switching speed as the projection light source. Particularly, the high-speed LED array is used to project a binary fringe pattern, and a sinusoidal fringe is obtained on a measured 3D object's surface by slightly defocusing the lens of the projection system, and the object's height is calculated. Afterward, the object is reconstructed by combining phase-shifting and multifrequency heterodyne methods. As an experiment, the proposed system was used for 3D measurement of a stepped object with a rotation speed of 3000 r/min at a projection speed of 21000 frame/s. The proposed system can measure a dynamic object at a speed of 6000 Hz, and the measurement accuracy reaches 0.1 mm, which realizes 3D shape reconstruction of high-speed moving objects. In addition, it shows the feasibility of using a high-speed LED array as a projection light source to improve 3D measurement speed to megahertz.
    I1(x,y)=A(x,y)+B(x,y)cosϕ(x,y)-2π/3,
    I2(x,y)=A(x,y)+B(x,y)cosϕ(x,y),
    I3(x,y)=A(x,y)+B(x,y)cosϕ(x,y)+2π/3,
    ϕ(x,y)=arctan3I1-I3/2I2-I1-I3
    Φ(x,y)=ϕ(x,y)+2k(x,y)π,
    Φ1(x,y)=ϕ1(x,y)+2k1(x,y)πΦ2(x,y)=ϕ2(x,y)+2k2(x,y)π,
    ϕeq(x,y)=ϕ1(x,y)-ϕ2(x,y),
    λeq=λ1λ2λ2-λ1,
    k1(x,y)=λeqλ1ϕeq(x,y)-ϕ1(x,y)2π,
    h(x,y)=i=0nai(x,y)Δϕ(x,y)i,
    Xiehui Geng, Jingming Song, Lei Zhang, Chao Zuo, Mingjie Sun. Three-Dimensional Measurement System of Fringe-Structured Light Based on High-Speed LED Array[J]. Laser & Optoelectronics Progress, 2023, 60(8): 0811015
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