• DocumentCode
    3605916
  • Title

    Exciting Engineered Passive Dynamics in a Bipedal Robot

  • Author

    Renjewski, Daniel ; Sprowitz, Alexander ; Peekema, Andrew ; Jones, Mikhail ; Hurst, Jonathan

  • Author_Institution
    Robot. & Embedded Syst. Group, Tech. Univ. Munchen, Garching, Germany
  • Volume
    31
  • Issue
    5
  • fYear
    2015
  • Firstpage
    1244
  • Lastpage
    1251
  • Abstract
    A common approach in designing legged robots is to build fully actuated machines and control the machine dynamics entirely in software, carefully avoiding impacts and expending a lot of energy. However, these machines are outperformed by their human and animal counterparts. Animals achieve their impressive agility, efficiency, and robustness through a close integration of passive dynamics, implemented through mechanical components, and neural control. Robots can benefit from this same integrated approach, but a strong theoretical framework is required to design the passive dynamics of a machine and exploit them for control. For this framework, we use a bipedal spring-mass model, which has been shown to approximate the dynamics of human locomotion. This paper reports the first implementation of spring-mass walking on a bipedal robot. We present the use of template dynamics as a control objective exploiting the engineered passive spring-mass dynamics of the ATRIAS robot. The results highlight the benefits of combining passive dynamics with dynamics-based control and open up a library of spring-mass model-based control strategies for dynamic gait control of robots.
  • Keywords
    design engineering; legged locomotion; neurocontrollers; robot dynamics; ATRIAS robot; bipedal robot; bipedal spring-mass model; dynamic gait control; dynamics-based control; exciting engineered passive dynamics; human locomotion dynamics; legged robot design; machine dynamics control; mechanical components; neural control; template dynamics; Dynamics; Force; Hip; Legged locomotion; Mathematical model; Springs; Biologically inspired robots; force control; legged robots; motion control; passive dynamics;
  • fLanguage
    English
  • Journal_Title
    Robotics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1552-3098
  • Type

    jour

  • DOI
    10.1109/TRO.2015.2473456
  • Filename
    7270326