• DocumentCode
    687448
  • Title

    The Implementation of Smoothing Robust Control for a Delta Robot

  • Author

    Hui-Hung Lin ; Yuan-Hung Ta ; Chao-Shu Liu

  • Author_Institution
    Energy & Agile Syst. Dept., Metal Ind. R&D Centre, Kaohsiung, Taiwan
  • fYear
    2013
  • fDate
    10-12 Dec. 2013
  • Firstpage
    208
  • Lastpage
    213
  • Abstract
    The implementation of smoothing robust control for a delta robot has been explored in this paper. Delta robots are usually used for the high speed pick-and-place or highly precise applications in the manufacturing factories. For the inherent mechanical structural constraints of delta robots, they would make the motion control more complex than serial manipulators. A delta robot control system is a highly coupling system and easy to induce position errors or chatter due to the effects of other attached limbs. In order to solve the serious problem, this paper implemented a smoothing robust control method, MDDS, to guarantee the smoothly and robustly dynamic behavior as we designed. The method has the capabilities of dynamics prediction and disturbance estimation, and then outputs the control efforts to deform the dynamic manifold of the controlled plant into the desired manifold. In the hardware structure, the paper uses a self-designed kernel development board with PC-based HMI to execute the experiments. The control methods are designed by the combined kernel of DSP and FPGA. We also develop the PID control method in the development board to make comparisons. Moreover, the validation of this control architecture for a delta robot is verified successfully through the results of experiments.
  • Keywords
    control engineering computing; digital signal processing chips; field programmable gate arrays; man-machine systems; manipulator dynamics; motion control; robust control; three-term control; DSP kernel; FPGA kernel; PC-based HMI; PID control method; control architecture; control method design; delta robot control system; disturbance estimation; dynamic manifold; dynamics prediction; hardware structure; high speed pick-and-place application; highly precise application; manufacturing factories; mechanical structural constraints; motion control; self-designed kernel development board; smoothing robust control method; Ear; Kernel; Manifolds; Robot kinematics; Service robots; Vectors; Delta robot; manifold deformation; smoothing robust;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Robot, Vision and Signal Processing (RVSP), 2013 Second International Conference on
  • Conference_Location
    Kitakyushu
  • Print_ISBN
    978-1-4799-3183-5
  • Type

    conf

  • DOI
    10.1109/RVSP.2013.11
  • Filename
    6830015