• DocumentCode
    3090549
  • Title

    Two dimensional dynamic stability for reconfigurable robots designed to traverse rough terrain

  • Author

    Beckman, Blake ; Pieper, Jeff ; Mackay, David ; Trentini, Michael ; Erickson, David

  • Author_Institution
    Autonomous Intell. Syst. Sect., Defence R&D Canada, Medicine Hat, AB
  • fYear
    2008
  • fDate
    22-26 Sept. 2008
  • Firstpage
    2447
  • Lastpage
    2452
  • Abstract
    Robots must be designed with consideration for reconfiguring body pose during operation if they are to address more challenging environments. Researchers have mostly relied on static stability methods to monitor the possibility of rollover in stationary or slow moving vehicles. However, little research in dynamic stability is being conducted for robots capable of reconfiguring their pose to overcome obstacles encountered in challenging terrains. A multi-degree-of-freedom robot with the capability to vary its center of gravity is discussed in this paper. It is designed to improve mobility over rough terrain and is used in this paper as an example to address one aspect of dynamic stability. A complete understanding of the dynamic behaviour of a multiple degree of freedom robot in unstructured terrain is a difficult problem to solve. It is too complex to solve completely and therefore a reduced aspect of the problem is addressed. The robot will only have the ability to vary its center of gravity in the plane parallel to its direction of forward motion. In addition the robot will only move on flat terrain and encounter an immovable linear step feature. The result of the research is that once the center of gravity is specified by selection of robot body pose, and a maximum obstacle considered, platform stability can be ensured with a maximum allowable velocity. In other words, a maximum allowable velocity of the robot is governed by the position of the center of gravity relative to the wheel in contact with the linear step feature. If the robot is traveling below the predetermined maximum velocity then the robot is guaranteed to remain upright.
  • Keywords
    mobile robots; robot dynamics; stability; multidegree-of-freedom robot; reconfigurable robots; rough terrain; slow moving vehicles; static stability methods; traverse rough terrain; two dimensional dynamic stability; unstructured terrain; Hip; Knee; Mobile robots; Robots; Tires; Vehicles; Wheels;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Intelligent Robots and Systems, 2008. IROS 2008. IEEE/RSJ International Conference on
  • Conference_Location
    Nice
  • Print_ISBN
    978-1-4244-2057-5
  • Type

    conf

  • DOI
    10.1109/IROS.2008.4650753
  • Filename
    4650753