• Infrared and Laser Engineering
  • Vol. 51, Issue 6, 20210630 (2022)
Huixing Zhang1、2, Quanying Wu1, Yunhai Tang1, Xuanzhi Lv1, Xiaoyi Chen2、3, and Yuwei Hou4
Author Affiliations
  • 1Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application, School of Physical Science and Technology, Suzhou University of Science and Technology, Suzhou 215009, China
  • 2Graduate Practice Station, Soochow Mason-optics Co.,Ltd., Suzhou 215007, China
  • 3Suzhou Mason Optical Co.,Ltd., Suzhou 215007, China
  • 4Suzhou FOIF Co., Ltd., Suzhou 215006, China
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    DOI: 10.3788/IRLA20210630 Cite this Article
    Huixing Zhang, Quanying Wu, Yunhai Tang, Xuanzhi Lv, Xiaoyi Chen, Yuwei Hou. Bi-directional fitting design of meridian lines for progressive addition lenses[J]. Infrared and Laser Engineering, 2022, 51(6): 20210630 Copy Citation Text show less
    References

    [1] Pope D R. Progressive addition lenses: histy, design, wearer satisfaction trends [C]Vision Science its Applications, Optical Society of America, 2000: paperNW9.

    [2] Quanying Wu, Lin Qian, Hao Chen, . Research on meridian lines design for progressive addition lenses. Acta Optica Sinica, 29, 3186-3191(2009).

    [3] Yunhai Tang, Quanying Wu, Xiaoyi Chen, . Optimization design of the meridian line of progressive addition lenses based on genetic algorithm. Acta Optica Sinica, 34, 0922005(2014).

    [4] Gufeng Qiu, Xudong Cui. Hyperbolic tangential function-based progressive addition lens design. Applied Optics, 54, 10404-10408(2015).

    [5] Yunhai Tang, Quanying Wu, Xiaoyi Chen, et al. A personalized design for progressive addition lenses. Optics Express, 25, 28100-28111(2017).

    [6] Quanying Wu, Yunhai Tang, Xiaoyi Chen, et al. Method for evaluating ophthalmic lens based on Eye-Lens-Object optical system. Optics Express, 27, 37274-37285(2019).

    [7] Tang Yunhai. Optimizing design of progressive addition lenses[D]. Suzhou: Soochow University, 2011. (in Chinese)

    [8] Quanying Wu, Lin Qian, Hao Chen, . design methods of progressive addition lenses. Laser Journal, 30, 12-14(2009).

    [9] Hao Zhang, Yunhai Tang, Quanying Wu, . Contour line optimization design of progressive addition lenses based on laplace equation. Laser & Optoelectronics Progress, 54, 112201(2017).

    [10] Zhitao Xiao, Shiliang Lou, Lei Geng, . Optical system design of portable non-mydriatic fundus camera. Infrared and Laser Engineering, 47, 0818001(2018).

    [11] Hongyan Lu, Dongfeng Bai, Jianwen Ma. Design for initial vector height model of progressive addition lenses surface. Laser & Optoelectronics Progress, 54, 032201(2017).

    [12] Casanellas G, Castro J. Using interi point solvers f optimizing progressive lens models with spherical codinates[J]. Optimization Engineering, 2020, 21(4): 13891421.

    [13] Huazhong Xiang, Lu Zhang, Jiandong Gao, et al. Weight distributions of spherical and cylindrical power deviations for designing freeform progressive addition lenses. Optics Communications, 484, 126662(2020).

    [14] Qin Linling. Study on simulation method optimization design of ophthalmic freefm lenses[D]. Suzhou: Soochow University, 2014. (in Chinese)

    [15] J E Sheedy, C Campbell, E King-Smith, et al. Progressive powered lenses: the Minkwitz theorem.. Optometry and Vision Science, 82, 916-922(2005).

    [16] S Barbero, M D M González. Admissible surfaces in progressive addition lenses. Optics Letters, 45, 5656-5659(2020).

    [17] Zhuolin Li, W B Lee. Study on removal characteristic of silicon carbide surface in precision mechanical polishing. Infrared and Laser Engineering, 45, 0220003(2016).

    Huixing Zhang, Quanying Wu, Yunhai Tang, Xuanzhi Lv, Xiaoyi Chen, Yuwei Hou. Bi-directional fitting design of meridian lines for progressive addition lenses[J]. Infrared and Laser Engineering, 2022, 51(6): 20210630
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