• DocumentCode
    2168876
  • Title

    Singularity control of robot manipulators using closed-form kinematic solutions

  • Author

    Lloyd, John ; Hayward, Vincent

  • Author_Institution
    Res. Centre for Intelligent Machines, McGill Univ., Montreal, Que., Canada
  • fYear
    1993
  • fDate
    14-17 Sep 1993
  • Firstpage
    1065
  • Abstract
    In robotics, kinematic singularities of serial chain manipulators arise at places where the transformation from Cartesian coordinates to robot joint coordinates becomes ill-defined, with a loss of one or more degrees of freedom. Traveling close to a singularity while following a path in Cartesian coordinates typically results in unacceptably high joint velocities and accelerations. The problem of singularity control is to keep the joint velocities and accelerations bounded while still trying to stay close to the desired path. The paper explores an alternative method of singularity control which directly utilizes closed-form inverse kinematic solutions. While not all robots have closed-form solutions, most six degree-of-freedom robots in common use do. Closed form kinematic solutions offers the advantages of speed and computational stability. Perhaps most importantly, they also enable us to know exactly where the various singularities are. We specifically consider straight line Cartesian trajectories, and discuss a method for constructing a velocity profile that allows these trajectories to pass near or through singularities without any deviation in the spatial path, while keeping both the joint velocities and accelerations bounded
  • Keywords
    acceleration control; industrial manipulators; kinematics; position control; velocity control; Cartesian coordinates; closed form kinematic solutions; closed-form inverse kinematic solutions; closed-form kinematic solutions; computational stability; joint velocities; kinematic singularities; robot joint coordinates; robot manipulators; serial chain manipulators; singularity control; six degree-of-freedom robots; spatial path; straight line Cartesian trajectories; velocity profile; Acceleration; Closed-form solution; Intelligent robots; Jacobian matrices; Machine intelligence; Manipulators; Robot control; Robot kinematics; Stability; Velocity control;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electrical and Computer Engineering, 1993. Canadian Conference on
  • Conference_Location
    Vancouver, BC
  • Print_ISBN
    0-7803-2416-1
  • Type

    conf

  • DOI
    10.1109/CCECE.1993.332274
  • Filename
    332274