Modeling and robust control of worm-gear driven systems

被引:26
|
作者
Yeh, T. -J. [1 ]
Wu, Feng-Kung [1 ]
机构
[1] Natl Tsing Hua Univ, Dept Power Mech Engn, Hsinchu 300, Taiwan
关键词
Modeling; Worm-gear driven systems; Nonlinear systems; Uncertainty; Robust control; Sliding control;
D O I
10.1016/j.simpat.2009.01.002
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper investigates modeling and control issues associated with worm-gear driven systems. in the modeling part, static and dynamic analyses are conducted to investigate the characteristics of the worm-gear. The static analysis reveals not only the non-backdrivability but also the dependency of break-in torques on the loading torque, direction of motion as well as crucial system parameters. The dynamic analysis generates four linear equations of motion, which, at any particular instant, only one applies. The applicable equation at any given instant depends on the direction of motion and the relative magnitude between the input torque and the loading torque. In the control part, a sliding controller is designed based on the modeling results. The controller can provide robustness against the uncertain loading torque and variations of system parameters caused by the speed-dependent nature of the coefficient of friction. Because the dependency of the dynamic equation on the operating condition may render the controller ill-defined in some scenarios, a lemma is proved and can be used to select proper control parameters to guarantee the well-definedness of the controller. The proposed control scheme is applied to a worm-gear driven positioning platform. Experimental results indicate the proposed control system exhibits more than 70% improvement in tracking error over PID control. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:767 / 777
页数:11
相关论文
共 50 条
  • [1] Modeling and robust control of worm-gear driven systems
    Yeh, TJ
    Wu, FK
    2005 IEEE INTERNATIONAL CONFERENCE ON MECHATRONICS, 2005, : 711 - 716
  • [2] WORM-GEAR SPEED REDUCERS
    WOLFE, G
    PLANT ENGINEERING, 1977, 31 (25) : 102 - 119
  • [3] SELF-LOCKING IN A WORM-GEAR
    JORDAN, RLA
    MACHINE DESIGN, 1973, 45 (25) : 166 - 167
  • [4] A new calibration guideline for worm and worm-gear rolling testers
    Pueo, M.
    Santolaria, J.
    Acero, R.
    Aguado, S.
    Gracia, A.
    MANUFACTURING ENGINEERING SOCIETY INTERNATIONAL CONFERENCE 2017 (MESIC 2017), 2017, 13 : 601 - 607
  • [5] TAKING GUESSWORK OUT OF WORM-GEAR DESIGN
    BUCKINGHAM, EK
    MACHINE DESIGN, 1975, 47 (07) : 82 - 86
  • [6] ON THE BIAS RATIO OF AUTOMOTIVE WORM-GEAR DIFFERENTIALS
    HSUEH, LC
    YAN, HS
    INTERNATIONAL JOURNAL OF VEHICLE DESIGN, 1993, 14 (2-3) : 212 - 225
  • [7] COMPARISON OF THE DYNAMICS OF CONVENTIONAL AND WORM-GEAR DIFFERENTIALS
    FREEMAN, JS
    VELINSKY, SA
    JOURNAL OF MECHANISMS TRANSMISSIONS AND AUTOMATION IN DESIGN-TRANSACTIONS OF THE ASME, 1989, 111 (04): : 605 - 610
  • [8] The Design and Development of an Anthropomorphic Worm-Gear Driven Robotic Hand: BIT-JOCKO
    Wang, Changjin
    Sun, Yao
    Xu, Jiafeng
    Liu, Xingdong
    Zhou, Xinbing
    Chen, Xiaopeng
    2019 IEEE 4TH INTERNATIONAL CONFERENCE ON ADVANCED ROBOTICS AND MECHATRONICS (ICARM 2019), 2019, : 426 - 431
  • [9] Modeling and control of a manipulator joint driven through a worm gear transmission
    May, DC
    Jayasuriya, S
    Mooring, BW
    JOURNAL OF VIBRATION AND CONTROL, 2000, 6 (01) : 85 - 111
  • [10] Inductor used for high frequency induction hardening for gear and worm-gear
    Sun, Chengbo
    Ding, Yuantao
    Yan, Libo
    Wang, Lin
    Jinshu Rechuli/Heat Treatment of Metals, 2000, (06): : 36 - 37