• Acta Optica Sinica
  • Vol. 41, Issue 18, 1812002 (2021)
Wei Wang, Jie Wang, Yiyang Huang, Huimin Yue*, and Yong Liu
Author Affiliations
  • School of OptoElectronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, Sichuan 611731, China
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    DOI: 10.3788/AOS202141.1812002 Cite this Article Set citation alerts
    Wei Wang, Jie Wang, Yiyang Huang, Huimin Yue, Yong Liu. Surface Defect Detection in Transparent Objects Using Polarized Transmission Structured Light[J]. Acta Optica Sinica, 2021, 41(18): 1812002 Copy Citation Text show less
    Schematic of generation principle for polarized transmission structured light
    Fig. 1. Schematic of generation principle for polarized transmission structured light
    Schematic of detection principle for polarized transmission structured light
    Fig. 2. Schematic of detection principle for polarized transmission structured light
    Schematic diagram of ray deflect for defect detection
    Fig. 3. Schematic diagram of ray deflect for defect detection
    System installation diagram
    Fig. 4. System installation diagram
    Relationships between polarizer and original result. (a) Result with polarizer; (b) result without polarizer; (c) comparison of the two results
    Fig. 5. Relationships between polarizer and original result. (a) Result with polarizer; (b) result without polarizer; (c) comparison of the two results
    Experimental results. (a) Binarization of dusts; (b) binarization of modulation result; (c) overlap data of Fig.6(a) and Fig.6(b); (d) defect distribution result after dust removal
    Fig. 6. Experimental results. (a) Binarization of dusts; (b) binarization of modulation result; (c) overlap data of Fig.6(a) and Fig.6(b); (d) defect distribution result after dust removal
    Experimental results of the plate glass in the reflected structured light and the polarized transmission structured light. (a) Polarized transmission structured light; (b) reflected structured light; (c) comparison of fringe quality; (d) comparison of results for the vertical line part in Fig.7(a) and Fig.7(b)
    Fig. 7. Experimental results of the plate glass in the reflected structured light and the polarized transmission structured light. (a) Polarized transmission structured light; (b) reflected structured light; (c) comparison of fringe quality; (d) comparison of results for the vertical line part in Fig.7(a) and Fig.7(b)
    Test experiment of optical lens for reflected structured light and polarized transmission structured light. (a) Fringe pattern of reflected structured light; (b) fringe pattern of polarized transmission structured light; (c) comparison of fringe quality for two methods
    Fig. 8. Test experiment of optical lens for reflected structured light and polarized transmission structured light. (a) Fringe pattern of reflected structured light; (b) fringe pattern of polarized transmission structured light; (c) comparison of fringe quality for two methods
    Modulation results of optical lens detection experiment for reflected structured light and polarized transmission structured light. (a) Reflected structured light; (b) polarized transmission structured light
    Fig. 9. Modulation results of optical lens detection experiment for reflected structured light and polarized transmission structured light. (a) Reflected structured light; (b) polarized transmission structured light
    Experimental results of pitting defect detection on lens surface. (a) Original result of modulation detection; (b) binarization of dust distribution; (c) binarization of original result; (d) overlap data of Fig.10(b) and Fig.10(c); (e) defect distribution results after dust removal
    Fig. 10. Experimental results of pitting defect detection on lens surface. (a) Original result of modulation detection; (b) binarization of dust distribution; (c) binarization of original result; (d) overlap data of Fig.10(b) and Fig.10(c); (e) defect distribution results after dust removal
    Standard comparison board for surface scratches
    Fig. 11. Standard comparison board for surface scratches
    Detection result of the standard comparison board for surface scratches using the polarized transmission structured light system
    Fig. 12. Detection result of the standard comparison board for surface scratches using the polarized transmission structured light system
    Wei Wang, Jie Wang, Yiyang Huang, Huimin Yue, Yong Liu. Surface Defect Detection in Transparent Objects Using Polarized Transmission Structured Light[J]. Acta Optica Sinica, 2021, 41(18): 1812002
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