• Infrared and Laser Engineering
  • Vol. 47, Issue 7, 718006 (2018)
Xia Peipei1、2、*, Wang Zhiqian1, Li Hongwen1, Deng Yongting1, and Wang Xianjun1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3788/irla201847.0718006 Cite this Article
    Xia Peipei, Wang Zhiqian, Li Hongwen, Deng Yongting, Wang Xianjun. Speed control for K mirror of 2 m telescope based on adaptive active disturbance rejection-controller[J]. Infrared and Laser Engineering, 2018, 47(7): 718006 Copy Citation Text show less
    References

    [1] Zhang Jingxu. Overview of structure technologies of large aperture ground-based telescopes [J]. Chinese Optics, 2012, 5(4): 327-336. (in Chinese)

    [2] Wang Zhichen, Zhao Yongzhi, Zhou Chao. Design of K mirror for alt-az telescope [J]. Acta Photonica Sinica, 2012, 41(7): 762-765. (in Chinese)

    [3] Li Hongwen. Servo system of large telescope based on internal model PID control method [J]. Opt Precision Eng, 2009, 17(2): 327-332. (in Chinese)

    [4] Zhang Bin, Li Hongwen, Guo Lihong, et al. Application of variable structure PID in velocity control for large telescope [J]. Opt Precision Eng, 2010, 18(7): 1613-1619. (in Chinese)

    [5] Song Yang, Gao Huibin, Zhang Shuimei. The analysis and design of low velocity estimation based on observer [C]// Proceedings of the IEEE, International Conference on Automation and Logistics, 2009.

    [6] Han Jingqing. From PID to active disturbance rejection control [J]. IEEE Transaction on Industrial Electronics, 2009, 56(3): 900-906.

    [7] Han Jingqing. Active Disturbance Rejection Control Technique-the Technique for Estimating and Compensating the Uncertainties [M]. Beijing: National Defense Industry Press, 2008. (in Chinese)

    [8] Du Bochao, Wu Shaopeng, Han Shouliang, et al. Application of linear active disturbance rejection controller for sensorless control of internal permanent-magnet synchronous motor [J]. IEEE Transactions on Industrial Electronics, 2016, 63(5): 3019-3027.

    [9] Gu Jian, Ai Yong, Shan Xin, et al. Improvement of linear ESO and its application in space optical communication coarse tracking [J]. Infrared and Laser Engineering, 2016, 45(3): 0322002. (in Chinese)

    [10] Feng Yinan, Zhu Xiaoping, Zhou Zhou. Adaptive cascade active disturbance rejection controller for flexible flying wing UAV attitude control [J]. Infrared and Laser Engineering, 2014, 43(5): 1594-1599. (in Chinese)

    [11] Yao Jiangyong, Deng Wenxiang. Active disturbance rejection adaptive control of hydraulic servo systems [J]. IEEE Transactions on Industrial Electronics, 2017, 99: 2694382.

    [12] Li Xiantao, Zhang Bao, Sun Jinghui, et al. ADRC based on disturbance frequency adaptive of aerial photoelectrical stabilization platform [J]. Infrared and Laser Engineering, 2014, 43(5): 1574-1581. (in Chinese)

    [13] Wang Wanting, Gao Jin, Jiang Zhenhua, et al. Study on photoelectric tracking system based on ADRC [J]. Infrared and Laser Engineering, 2017,46(2): 0217003. (in Chinese)

    [14] Gao Zhiqiang. Scaling and bandwidth-parameterization based controller tuning[C]//Proceedings of the 2003 ACC, 2003: 4989-4996.

    [15] Gao Zhiqiang. On the foundation of active disturbance rejection control [J]. Control Theory & Applications, 2013, 30(12): 1498-1510. (in Chinese)

    [16] Li Jie, Qi Yuanhui, Xia Yuanqing, et al. On linear/ nonlinear active disturbance rejection switching control [J]. Acta Automatica Sinica, 2016, 46(2): 202-212. (in Chinese)

    [17] Li Jie, Xia Yuanqing, Qi Xiaohui, et al. On the necessity, scheme and basis of the linear-nonlinear switching in active disturbance rejection control [J]. IEEE Transaction on Indusrial Electronics, 2016, 99: 2611573.

    [18] Lu Ning. The problem of successive functions to approach to the dispeesed data [J]. Journal of Northwestern Institute of Architectural Engineering, 1993(1): 41-46. (in Chinese)

    Xia Peipei, Wang Zhiqian, Li Hongwen, Deng Yongting, Wang Xianjun. Speed control for K mirror of 2 m telescope based on adaptive active disturbance rejection-controller[J]. Infrared and Laser Engineering, 2018, 47(7): 718006
    Download Citation