• DocumentCode
    2349293
  • Title

    Design of differentially flat planar space robots: a step forward in their planning and control

  • Author

    Franch, Jaume ; Agrawal, Sunil K. ; Oh, S. ; Fattah, Abbas

  • Author_Institution
    Dept. de Matematica Aplicada IV, UPC, Campus Nord, Spain
  • Volume
    4
  • fYear
    2003
  • fDate
    27-31 Oct. 2003
  • Firstpage
    3053
  • Abstract
    The motion of free-floating space robots is characterized by nonholonomic, i.e., non-integrable rate constraint equations. These constraints originate from principles of conservation of linear and angular momentum. It is well known that these rate constraints can also be written as input-affine drift-less control systems. Trajectory planning of these systems is extremely challenging and computation intensive since the motion must satisfy differential constraints. However, under certain conditions, these drift-less control systems can be shown to be differentially flat. The property of flatness allows a computationally in-expensive way to plan trajectories for the dynamic system between two configurations as well as develop feedback controllers. Nonholonomic rate constraints for free-floating planar open-chain robots are systematically studied to determine the design conditions under which the system exhibits differential flatness. Under these design conditions, the property of flatness is used for trajectory planning and feedback control under perturbations in the initial state.
  • Keywords
    aerospace robotics; angular momentum; differential equations; feedback; linear momentum; nonlinear dynamical systems; path planning; position control; angular momentum; conservation principles; differential constraints; differential flatness; differentially flat planar space robots design; feedback controllers; free-floating planar open-chain robots; free-floating space robots; input-affine driftless control systems; linear momentum; motion planning; nonholonomic rate constraints; nonintegrable rate constraint equations; nonlinear dynamical system; trajectory planning; Adaptive control; Control systems; Differential equations; Feedback control; Manipulators; Motion control; Motion planning; Orbital robotics; Robots; Trajectory;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Intelligent Robots and Systems, 2003. (IROS 2003). Proceedings. 2003 IEEE/RSJ International Conference on
  • Print_ISBN
    0-7803-7860-1
  • Type

    conf

  • DOI
    10.1109/IROS.2003.1249625
  • Filename
    1249625