DocumentCode :
1382699
Title :
Experimental study of contact transition control incorporating joint acceleration feedback
Author :
Xu, W.L. ; Han, J.D. ; Tso, S.K.
Author_Institution :
Inst. of Technol. & Eng., Massey Univ., Palmerston North, New Zealand
Volume :
5
Issue :
3
fYear :
2000
fDate :
9/1/2000 12:00:00 AM
Firstpage :
292
Lastpage :
301
Abstract :
Joint acceleration and velocity feedbacks are incorporated into a classical internal force control of a robot in contact with the environment. This is intended to achieve a robust contact transition and force tracking performance for varying unknown environments, without any need of adjusting the controller parameters. A unified control structure is proposed for free motion, contact transition, and constrained motion in view of the consumption of the initial kinetic energy generated by a nonzero impact velocity. The influence of the velocity and acceleration feedbacks, which are introduced especially for suppressing the transition oscillation, on the postcontact tracking performance is discussed. Extensive experiments are conducted on the third joint of a three-link direct-drive robot to verify the proposed scheme for environments of various stiffnesses, including elastic (sponge), less elastic (cardboard), and hard (steel plate) surfaces. Results are compared with those obtained by the transition control scheme without the acceleration feedback. The ability of the proposed control scheme in resisting the force disturbance during the postcontact period is also experimentally investigated
Keywords :
acceleration control; feedback; force control; robots; velocity control; vibration control; cardboard; constrained motion; contact transition control; force tracking performance; free motion; internal force control; joint acceleration feedback; sponge; steel plate; stiffnesses; three-link direct-drive robot; transition oscillation suppression; unified control structure; varying unknown environments; velocity feedback; Acceleration; Force control; Force feedback; Impedance; Manufacturing automation; Robot control; Robotic assembly; Robotics and automation; Robust control; Velocity control;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/3516.868921
Filename :
868921
Link To Document :
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