• Acta Optica Sinica
  • Vol. 43, Issue 5, 0512003 (2023)
Xiaobo Xu1, Minghui Duan1, Xin Fan2, Chang'an Zhu1, and Yi Jin1、*
Author Affiliations
  • 1Department of Precision Machinery and Precision Instruments, University of Science and Technology of China, Hefei 230022, Anhui, China
  • 2Innovation Laboratory of Wuhu State-Owned Factory of Machining, University of Science and Technology of China, Hefei 230022, Anhui, China
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    DOI: 10.3788/AOS221593 Cite this Article Set citation alerts
    Xiaobo Xu, Minghui Duan, Xin Fan, Chang'an Zhu, Yi Jin. Surface Defect Detection of Transparent Objects Based on Fringe Modulation[J]. Acta Optica Sinica, 2023, 43(5): 0512003 Copy Citation Text show less
    Configuration of surface defect detection system
    Fig. 1. Configuration of surface defect detection system
    Optical paths of incident light under influence of double surfaces
    Fig. 2. Optical paths of incident light under influence of double surfaces
    Primary reflection light path
    Fig. 3. Primary reflection light path
    Secondary reflection light path
    Fig. 4. Secondary reflection light path
    Experimental setup
    Fig. 5. Experimental setup
    Defect detection results for front surface. (a) Detection result of UIT; (b) detection result of SIT; (c) phase distribution of front surface obtained by ECA; (d) phase distribution of front surface obtained by SMM; (e) detection result of proposed method; (f) comparison of cross-sections among different methods
    Fig. 6. Defect detection results for front surface. (a) Detection result of UIT; (b) detection result of SIT; (c) phase distribution of front surface obtained by ECA; (d) phase distribution of front surface obtained by SMM; (e) detection result of proposed method; (f) comparison of cross-sections among different methods
    Local comparison of detection results among different methods
    Fig. 7. Local comparison of detection results among different methods
    Result comparison between SIT and proposed method. (a) Grayscale distributions corresponding to Figs. 6(b) and 6(e);(b) binarization result corresponding to Fig. 6(b); (c) binarization result corresponding to Fig. 6(e)
    Fig. 8. Result comparison between SIT and proposed method. (a) Grayscale distributions corresponding to Figs. 6(b) and 6(e);(b) binarization result corresponding to Fig. 6(b); (c) binarization result corresponding to Fig. 6(e)
    Comparison between single surface detection methods and proposed method. (a) Detection result of UIT; (b) detection result of SIT; (c) detection result of front surface obtained by proposed method; (d) detection result of back surface obtained by proposed method; (e) comparison of cross-sections among different methods
    Fig. 9. Comparison between single surface detection methods and proposed method. (a) Detection result of UIT; (b) detection result of SIT; (c) detection result of front surface obtained by proposed method; (d) detection result of back surface obtained by proposed method; (e) comparison of cross-sections among different methods
    Comparison between double surface detection methods and proposed method. (a) Phase distributions of front and back surfaces obtained by ECA; (b) phase distributions of front and back surfaces obtained by SMM; (c) detection results of front and back surfaces obtained by proposed method; (d) comparison of cross-sections among different methods
    Fig. 10. Comparison between double surface detection methods and proposed method. (a) Phase distributions of front and back surfaces obtained by ECA; (b) phase distributions of front and back surfaces obtained by SMM; (c) detection results of front and back surfaces obtained by proposed method; (d) comparison of cross-sections among different methods
    Xiaobo Xu, Minghui Duan, Xin Fan, Chang'an Zhu, Yi Jin. Surface Defect Detection of Transparent Objects Based on Fringe Modulation[J]. Acta Optica Sinica, 2023, 43(5): 0512003
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