OPTICS & OPTOELECTRONIC TECHNOLOGY, Volume. 19, Issue 6, 57(2021)

Design of the Freeform Imaging Optical System With Large Field of View and High Resolution

LI Yue-qiang1 and CAO Chao2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    References(9)

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    [7] [7] MENG Q, WANG H, WANG K, et al. Off-axis three-mirror freeform telescope with a large linear field of view based on an integration mirror[J]. Applied Optics, 2016, 55(32): 8962-8970.

    [8] [8] HOU W, ZHU J, YANG T, et al. Construction method through forward and reverse ray tracing for a design of ultra-wide linear field-of-view off-axis freeform imaging systems[J]. Journal of Optics, 2015, 17(5): 055603.

    [9] [9] XIE Y, MAO X, LI J, et al. Optical design and fabrication of an all-aluminum unobscured two-mirror freeform imaging telescope[J]. Applied Optics, 2020, 55(3): 833-840.

    [10] [10] Chrisp M. Wide angle reflective telescopes with NURBS freeform surfaces[C]. SPIE, 2017, 10590: 1059011.

    [11] [11] Thompson K, Schmid T, Cakmakc O, et al. Real-ray-based method for locating individual surface aberration field centers in imaging optical systems without rotational symmetry[J]. Journal of the Optical Society of America A, 2009, 26(6): 1503-1517.

    [12] [12] Thompso K. Aberration fields in titled and decentered optical systems[D]. Tucson: University of Arizona, 1980.

    [14] [14] CAO C, LIAO S, LIAO Z Y, et al. Initial configuration design method for off-axis reflective optical systems using nodal aberration theory and genetic algorithm[J]. Optical Engineering, 2019, 58(10): 105101.

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    LI Yue-qiang, CAO Chao. Design of the Freeform Imaging Optical System With Large Field of View and High Resolution[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2021, 19(6): 57

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    Paper Information

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    Received: Apr. 22, 2021

    Accepted: --

    Published Online: Feb. 28, 2022

    The Author Email:

    DOI:

    CSTR:32186.14.

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