• Infrared and Laser Engineering
  • Vol. 49, Issue 10, 20200046 (2020)
Chao Gao, Fang Chen, and Haiyang Sun
Author Affiliations
  • Beijing Institute of Space Mechanics & Electricity, Beijing 100094, China
  • show less
    DOI: 10.3788/IRLA20200046 Cite this Article
    Chao Gao, Fang Chen, Haiyang Sun. Design and error analysis of measurement structure for large aperture space camera mainboard[J]. Infrared and Laser Engineering, 2020, 49(10): 20200046 Copy Citation Text show less
    References

    [1] Jiang Guo, Lei Zhu, Ji Zhao, . Design and optimize of high tolerance support structure for large aperture space mirror. Optics and Precision Engineering, 27, 1138-1147(2019).

    [2] Yan Zhai, Gui Mei, Fan Jiang, . φ2020 mm aperture space infrared camera main reflector design. Chinese Journal of Luminescence, 39, 1170-1176(2018).

    [3] Haibin Jiang, Shikui Luo, Dongjing Cao, . Technology of high-density and high-resolution camera of GF-2 satellite. Spacecraft Recovery & Remote Sensing, 36, 25-33(2015).

    [4] Baogang Chen, Liang Shao, Jianfeng Li. Precise measurement of flatness for large diameter narrow zone annular plane. Opto-electronic Engineering, 42, 14-19(2015).

    [5] I Fujimoto, K Nishimura, T Takatsuji, et al. A technique to measure the flatness of next-generation 450mm wafers using a three-point method with an autonomous calibration function. Precis Eng, 36, 270-280(2012).

    [6] Chienhung Liu, Binhung Lin. Development of a nanometer resolution flatness measurement system for the ceramic surface by using Blue-ray optical pickup. Microsystem Technologies, 19, 1817-1821(2013).

    [7] Meiyun Chen, Satoru Takahashi, Kiyoshi Takamasu. Multi-beam angle sensor for flatness measurement of mirror using circumferential scan technology. International Journal of Precision Engineering and Manufacturing, 17, 1093-1099(2016).

    [8] Zhang Guoxiong. Codinate Measuring Machines[M]. Tianjin: Tianjin University Press, 1999.(in Chinese)

    [9] General requirement of metrology suppt f military material Test calibration[S]. GJB 51092004.

    [10] Doyle K B, Genberg V L, Michels G J. Integrated Optomechanical Analysis[M]. Lian Huadong, Wang Xiaoyong, Xu Peng,Translated. 2nd ed, Beijing: National Defense Industry Press, 2015.(in Chinese)

    [11] Toulemont Y, Passvogel T, Pilbratt G L, et al. The 3.5m allSiC telescope f Herschel[C]Proc of SPIE, 2004, 5487: 11191128.

    [12] Denis Fappani. Manufacturing & control of the spherical mirrs f the telescope of the French satellite Pleiades[C]SPIE, 2007, 6687: 111.

    [13] Yoder P R. OptoMechanical Systems Design[M]. Zhou Haixian, Cheng Yunfang,Translated. 3rd ed, Beijing: China Machine Press, 2008.(in Chinese)

    [14] Chengbin Wang, Shengli Sun, Tingliang Hu, . Design method of high precision reflection mirror topography measurement structure. Infrared and Laser Engineering, 45, 0117006(2016).

    [15] Yuan An, Xuezhi Jia, Lei Zhang, . Optimizing design of CFRP based main backbone with high stiffness ratio for space camera. Optics and Precision Engineering, 21, 416-422(2013).

    CLP Journals

    [1] Jiayi Chen, Haichao Wang, Bin Li, Yong Liu, Yanhui Jiang, Liqiang Yao. 0 g surface figure test of large aperture mirror supported by Bipod[J]. Infrared and Laser Engineering, 2022, 51(5): 20210604

    Chao Gao, Fang Chen, Haiyang Sun. Design and error analysis of measurement structure for large aperture space camera mainboard[J]. Infrared and Laser Engineering, 2020, 49(10): 20200046
    Download Citation