Volume 48 Issue S1
May  2019
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Han Qingyang, Chen Yun, Zhang Hongsheng, Gao Shengying, Zhang Xi. Design of signal processing system for spaceborne reflection photoelectric encoder[J]. Infrared and Laser Engineering, 2019, 48(S1): 135-141. doi: 10.3788/IRLA201948.S117010
Citation: Han Qingyang, Chen Yun, Zhang Hongsheng, Gao Shengying, Zhang Xi. Design of signal processing system for spaceborne reflection photoelectric encoder[J]. Infrared and Laser Engineering, 2019, 48(S1): 135-141. doi: 10.3788/IRLA201948.S117010

Design of signal processing system for spaceborne reflection photoelectric encoder

doi: 10.3788/IRLA201948.S117010
  • Received Date: 2018-11-10
  • Rev Recd Date: 2018-12-20
  • Publish Date: 2019-04-25
  • In order to satisfy the miniaturization, high accuracy and high reliability of spaceborne reflection photoelectric encoder, the signal processing system was designed. Firstly, the overall design of the signal process system spaceborne reflection photoelectric encoder was represented. Then, methods of processing precise code and coarse code were given, and the data processing system was integrated into main system which used FPGA, the size was decreased, at the same time the electric circuit was cold backup to improve the reliability. Finally, 23 surfaces polyhedron and autocollimation were used to test the accuracy. The experiment results show that the resolution is 0.3(22 bit), the primary precision was =2.22(3=6.65), the standby precision is =2.69(3=8.07), by using this signal processing system. By applying to practical projects, the processing system had satisfied the technique reqirement of the spaceborne equipment.
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    [2] Ye Shengxiang. Accurate Meanurement About Photoelectric Shift[M]. Chengdu:Science and Technology Press, 2003. (in Chinese)
    [3] Liu Changshun, Wang Xianjun, Han Xudong, et al. Ultra miniature absolute optical encoder based on eight-matix coding[J]. Opt Precision Eng, 2010, 18(2):326-333. (in Chinese)
    [4] Yang Shouwang, Liang Lihui, Wang Shujie. Photoelectrical encoder IP core design[J]. Electronic Measurement Technology, 2014, 37(9):113-116. (in Chinese)
    [5] Sun Ying, Wan Qiuhua, Wang Shujie, et al. Design of signal process system for spaceborne photoeletric encoder[J]. Opt Precision Eng, 2010, 18(5):1182-1188. (in Chinese)
    [6] Zhao Changhai, Wan Qiuhua, Liang Lihui, et al. The small high-precision spaceborne photoeletric encoder[J]. Journal of Electronic Measurement and Instrument, 2015, 29(8):1225-1230. (in Chinese)
    [7] Du Yingcai, Wang Xijun, Wang Shujie, et al. Auto-detection system of incremental encoder[J]. Journal of Electronic Measurement and Instrumnet, 2012, 26(11):993-998. (in Chinese)
    [8] Yu Hai, Wan Qiuhua, Liang Lihui, et al. Dynamic code error detection system of photoelectric encoder[J]. Infrared and Laser Engineering, 2016, 45(9):09170021. (in Chinese)
    [9] Yu Hai, Wan Qiuhua, Lu Xinran, et al. Calibration of dynamic precision for measurement platform of photoelectric encoder[J]. Opt Precision Eng, 2016, 11(11):2699-2704. (in Chinese)
    [10] Wang Yuanyuan, Wan Qiuhua, Liang Lihui, et al. Miniature absolute metal photoeletric code disc[J]. Instrument Technique and Sensor, 2013(6):20-23. (in Chinese)
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Design of signal processing system for spaceborne reflection photoelectric encoder

doi: 10.3788/IRLA201948.S117010
  • 1. Changchun Institute of Optics,Fine Mechanics and Physics,Chinese Academy of Sciences,Changchun 130033,China

Abstract: In order to satisfy the miniaturization, high accuracy and high reliability of spaceborne reflection photoelectric encoder, the signal processing system was designed. Firstly, the overall design of the signal process system spaceborne reflection photoelectric encoder was represented. Then, methods of processing precise code and coarse code were given, and the data processing system was integrated into main system which used FPGA, the size was decreased, at the same time the electric circuit was cold backup to improve the reliability. Finally, 23 surfaces polyhedron and autocollimation were used to test the accuracy. The experiment results show that the resolution is 0.3(22 bit), the primary precision was =2.22(3=6.65), the standby precision is =2.69(3=8.07), by using this signal processing system. By applying to practical projects, the processing system had satisfied the technique reqirement of the spaceborne equipment.

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