Motion capability analysis of a quadruped robot as a parallel manipulator

Jingjun YU , Dengfeng LU , Zhongxiang ZHANG , Xu PEI

Front. Mech. Eng. ›› 2014, Vol. 9 ›› Issue (4) : 295 -307.

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Front. Mech. Eng. ›› 2014, Vol. 9 ›› Issue (4) : 295 -307. DOI: 10.1007/s11465-014-0317-7
RESEARCH ARTICLE
RESEARCH ARTICLE

Motion capability analysis of a quadruped robot as a parallel manipulator

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Abstract

This paper presents the forward and inverse displacement analysis of a quadruped robot MANA as a parallel manipulator in quadruple stance phase, which is used to obtain the workspace and control the motion of the body. The robot MANA designed on the basis of the structure of quadruped mammal is able to not only walk and turn in the uneven terrain, but also accomplish various manipulating tasks as a parallel manipulator in quadruple stance phase. The latter will be the focus of this paper, however. For this purpose, the leg kinematics is primarily analyzed, which lays the foundation on the gait planning in terms of locomotion and body kinematics analysis as a parallel manipulator. When all four feet of the robot contact on the ground, by assuming there is no slipping at the feet, each contacting point is treated as a passive spherical joint and the kinematic model of parallel manipulator is established. The method for choosing six non-redundant actuated joints for the parallel manipulator from all twelve optional joints is elaborated. The inverse and forward displacement analysis of the parallel manipulator is carried out using the method of coordinate transformation. Finally, based on the inverse and forward kinematic model, two issues on obtaining the reachable workspace of parallel manipulator and planning the motion of the body are implemented and verified by ADAMS simulation.

Keywords

quadruped robot / actuated joints selection / kinematics analysis / motion planning / parallel manipulator

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Jingjun YU, Dengfeng LU, Zhongxiang ZHANG, Xu PEI. Motion capability analysis of a quadruped robot as a parallel manipulator. Front. Mech. Eng., 2014, 9(4): 295-307 DOI:10.1007/s11465-014-0317-7

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