• DocumentCode
    1123982
  • Title

    Trajectory control of incompletely restrained parallel-wire-suspended mechanism based on inverse dynamics

  • Author

    Yamamoto, Motoji ; Yanai, Noritaka ; Mohri, Akira

  • Author_Institution
    Dept. of Intelligent Machinery & Syst., Kyushu Univ., Fukuoka, Japan
  • Volume
    20
  • Issue
    5
  • fYear
    2004
  • Firstpage
    840
  • Lastpage
    850
  • Abstract
    This paper discusses parallel wire mechanisms where an end-effector of the mechanism is suspended by multiple wires. The mechanisms enable not only three-dimensional (3-D) positioning but also 3-D orienting of the end-effector, unlike typical wire suspension-type mechanisms such as overhead crane. To discuss the parallel-wire-suspended mechanisms generally, two forms of basic dynamic equations are presented. Then the parallel wire mechanisms are classified into two types based on the basic equations. Dynamical properties of the two types of wire-suspended positioning mechanism are discussed. In this paper, one of the wire-suspended mechanism, incompletely restrained-type parallel wire mechanism, is mainly discussed on its inverse dynamics problem and its trajectory control problem. The inverse dynamics problem for the incompletely restrained-type mechanism plays an important role on its control problem, because the mechanism has low stiffness based on incomplete constraints on the suspended object which is governed by its dynamics. The paper proposes an antisway control method for the suspended object. In the method, the inverse dynamics calculation is used for nonlinear dynamics compensation to control the suspended object of the incompletely restrained parallel wire mechanism.
  • Keywords
    end effectors; feedback; manipulator dynamics; nonlinear control systems; position control; three-term control; basic dynamic equations; end-effector; incompletely restrained mechanism; inverse dynamics; nonlinear dynamics compensation; parallel wire suspended mechanism; positioning mechanism; trajectory control; Automatic control; Construction industry; Cranes; Equations; Helium; Intelligent systems; Manufacturing; Mechanical factors; Robotics and automation; Wire; Incompletely restrained mechanism; inverse dynamics; parallel wire mechanism; trajectory control;
  • fLanguage
    English
  • Journal_Title
    Robotics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1552-3098
  • Type

    jour

  • DOI
    10.1109/TRO.2004.829501
  • Filename
    1339384