Hysteresis Modeling and Compensation of Fast Steering Mirrors with Hysteresis Operator Based Back Propagation Neural Networks

被引:13
作者
Cao, Kairui [1 ]
Hao, Guanglu [1 ]
Liu, Qingfeng [1 ]
Tan, Liying [1 ]
Ma, Jing [1 ]
机构
[1] Harbin Inst Technol, Sch Astronaut, Harbin 150001, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
nonlinear hysteresis; inverse hysteresis compensation; fast steering mirror (FSM); neural network; Madelung's rules; ACTUATORS;
D O I
10.3390/mi12070732
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Fast steering mirrors (FSMs), driven by piezoelectric ceramics, are usually used as actuators for high-precision beam control. A FSM generally contains four ceramics that are distributed in a crisscross pattern. The cooperative movement of the two ceramics along one radial direction generates the deflection of the FSM in the same orientation. Unlike the hysteresis nonlinearity of a single piezoelectric ceramic, which is symmetric or asymmetric, the FSM exhibits complex hysteresis characteristics. In this paper, a systematic way of modeling the hysteresis nonlinearity of FSMs is proposed using a Madelung's rules based symmetric hysteresis operator with a cascaded neural network. The hysteresis operator provides a basic hysteresis motion for the FSM. The neural network modifies the basic hysteresis motion to accurately describe the hysteresis nonlinearity of FSMs. The wiping-out and congruency properties of the proposed method are also analyzed. Moreover, the inverse hysteresis model is constructed to reduce the hysteresis nonlinearity of FSMs. The effectiveness of the presented model is validated by experimental results.
引用
收藏
页数:13
相关论文
共 24 条
  • [1] An Analytical Generalized Prandtl-Ishlinskii Model Inversion for Hysteresis Compensation in Micropositioning Control
    Al Janaideh, Mohammad
    Rakheja, Subhash
    Su, Chun-Yi
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2011, 16 (04) : 734 - 744
  • [2] [Anonymous], 2013, CHIN J LASERS
  • [3] Laser Beam Pointing Stabilization Control through Disturbance Classification
    Chang, Hui
    Ge, Wen-Qi
    Wang, Hao-Cheng
    Yuan, Hong
    Fan, Zhong-Wei
    [J]. SENSORS, 2021, 21 (06) : 1 - 12
  • [4] Nonlinear Hysteresis Modeling of Piezoelectric Actuators Using a Generalized Bouc-Wen Model
    Gan, Jinqiang
    Zhang, Xianmin
    [J]. MICROMACHINES, 2019, 10 (03):
  • [5] Modeling piezoelectric stack actuators for control of micromanipulation
    Goldfarb, M
    Celanovic, N
    [J]. IEEE CONTROL SYSTEMS MAGAZINE, 1997, 17 (03): : 69 - 79
  • [6] Modeling and Compensation of Asymmetric Hysteresis Nonlinearity for Piezoceramic Actuators With a Modified Prandtl-Ishlinskii Model
    Gu, Guo-Ying
    Zhu, Li-Min
    Su, Chun-Yi
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2014, 61 (03) : 1583 - 1595
  • [7] Modeling, identification and compensation of complex hysteretic nonlinearities: A modified prandtl-ishlinskii approach
    Kuhnen, Klaus
    [J]. European Journal of Control, 2003, 9 (04) : 407 - 418
  • [8] Li R., 2020, IEEE T IND ELECTRON
  • [9] Modeling and Inverse Compensation for Coupled Hysteresis in Piezo-Actuated Fabry-Perot Spectrometer
    Li, Zhi
    Shan, Jinjun
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2017, 22 (04) : 1903 - 1913
  • [10] Intelligent Rate-Dependent Hysteresis Control Compensator Design With Bouc-Wen Model Based on RMSO for Piezoelectric Actuator
    Liu, Dongbo
    Fang, Yu
    Wang, Haibin
    [J]. IEEE ACCESS, 2020, 8 (08): : 63993 - 64001