DocumentCode :
26632
Title :
Mode Switching Feedback Compensation Considering Rolling Friction Characteristics for Fast and Precise Positioning
Author :
Maeda, Yuji ; Iwasaki, Makoto
Author_Institution :
Dept. of Comput. Sci. & Eng., Nagoya Inst. of Technol., Nagoya, Japan
Volume :
61
Issue :
2
fYear :
2014
fDate :
Feb. 2014
Firstpage :
1123
Lastpage :
1132
Abstract :
This paper presents a mode switching feedback (FB) compensation methodology based on rolling friction models for the fast and precise positioning of table drive systems. Rolling friction in the table drive mechanisms behaves as a nonlinear elastic component in the micro displacement region and deteriorates the position settling performance with slow responses. Effects of the rolling friction on the positioning, therefore, should be compensated to provide the desired control performance. The authors have already proposed a rolling friction model-based friction compensation scheme to improve the slow settling responses. The conventional approach, however, could not suppress vibratory settling responses due to unknown model errors and/or plant perturbations, and there still remains the performance deterioration in the positioning accuracy to be solved. In this research, therefore, a novel mode switching FB compensation considering the rolling friction properties is applied to provide the desired settling performance with well-suppression of both vibratory response and slow response. The feature of the proposed approach is that the vibratory and slow responses at the settling are handled as an initial value response of the FB control system in the micro displacement region and can be suppressed in a mode switching control manner on the basis of initial value compensation frameworks utilizing the elastic characteristic of the rolling friction. The proposed approach has been verified by numerical simulations and experiments using a prototype of industrial table positioning devices.
Keywords :
compensation; drives; feedback; numerical analysis; position control; rolling friction; vibration control; FB compensation methodology; control performance; fast drive positioning; industrial table positioning device; microdisplacement region; mode switching control; mode switching feedback compensation; nonlinear elastic component; numerical simulation; precise drive positioning; rolling friction characteristic; table drive mechanism; table drive system; vibratory settling response suppression; Friction; Gain; Rheology; Initial value response; mode switching control; nonlinear elastic property; rolling friction; slow response; vibratory response;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2013.2242420
Filename :
6419816
Link To Document :
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