DocumentCode :
10896
Title :
A Comparison of the Performance Improvement by Collocated and Noncollocated Active Damping in Motion Systems
Author :
Babakhani, Behrouz ; de Vries, Theo J. A. ; van Amerongen, J.
Author_Institution :
Robot. & Mechatron. Group, Univ. of Twente, Enschede, Netherlands
Volume :
18
Issue :
3
fYear :
2013
fDate :
Jun-13
Firstpage :
905
Lastpage :
913
Abstract :
In this paper, both collocated and noncollocated active vibration control (AVC) of the vibrations in a motion system are considered. Pole-zero plots of both the AVC loop and the motion-control (MC) loop are used to analyze the effect of the applied active damping on the system dynamics. Using these plots and the simulated end-effector position of the actively damped plant, a comparison is made between the collocated AVC, using integral force feedback (IFF), and noncollocated AVC, by means of acceleration feedback. It is demonstrated that collocated AVC improves the performance of the plant by adding damping to both the resonance and antiresonance mode of the plant and making it possible to increase the MC bandwidth. The applied noncollocated AVC improves the performance by adding damping to the resonance mode. However, as opposed to the collocated AVC, for the applied noncollocated AVC, there is a tradeoff between various performance criteria, such as rise time and settling time, that is determined by the balance between the added damping and the increase of the bandwidth. This is true for all the AVC methods that do not increase the damping of the antiresonance mode.
Keywords :
damping; end effectors; force feedback; motion control; poles and zeros; vibration control; AVC loop; IFF; MC loop; acceleration feedback; antiresonance mode; end-effector position; integral force feedback; motion systems; motion-control loop; noncollocated active damping; noncollocated active vibration control; performance improvement; pole-zero plots; rise time; settling time; Actuators; Automatic voltage control; Damping; End effectors; Force; Poles and zeros; Vibrations; (leaking) integral force feedback (IFF); Acceleration feedback; LAC/HAC; active damping; collocation; control engineering; feedback; poles and zeros; rocking mode; root-locus; vibration control;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2012.2195193
Filename :
6193438
Link To Document :
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