This paper discusses optimal H∞ control synthesis via discrete Riccati equations for discrete linear periodically time-varying (LPTV) systems. Based on the results presented in [1], an explicit minimum entropy H∞ controller for general time-varying systems is obtained. The control synthesis technique is subsequently applied to LPTV systems and it is shown that the resulting controllers are also periodically time varying. In order to demonstrate the effectiveness of the proposed control synthesis technique, both single-rate and multi-rate discrete-time minimum entropy H∞ track-following control designs for hard disk drives are considered. It is shown, via a comprehensive simulation study, that track-following controllers designed using the H∞ synthesis technique proposed in this paper achieve the robust performance of a desired error rejection function. Moreover, as expected, multi-rate controllers has the ability of outperforming their single-rate counterparts.
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ASME 2010 Dynamic Systems and Control Conference
September 12–15, 2010
Cambridge, Massachusetts, USA
Conference Sponsors:
- Dynamic Systems and Control Division
ISBN:
978-0-7918-4417-5
PROCEEDINGS PAPER
Optimal H∞ Control for Linear Periodically Time-Varying Systems in Hard Disk Drives Available to Purchase
Jianbin Nie,
Jianbin Nie
University of California, Berkeley, Berkeley, CA
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Richard Conway,
Richard Conway
University of California, Berkeley, Berkeley, CA
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Roberto Horowitz
Roberto Horowitz
University of California, Berkeley, Berkeley, CA
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Jianbin Nie
University of California, Berkeley, Berkeley, CA
Richard Conway
University of California, Berkeley, Berkeley, CA
Roberto Horowitz
University of California, Berkeley, Berkeley, CA
Paper No:
DSCC2010-4285, pp. 993-1000; 8 pages
Published Online:
January 25, 2011
Citation
Nie, J, Conway, R, & Horowitz, R. "Optimal H∞ Control for Linear Periodically Time-Varying Systems in Hard Disk Drives." Proceedings of the ASME 2010 Dynamic Systems and Control Conference. ASME 2010 Dynamic Systems and Control Conference, Volume 1. Cambridge, Massachusetts, USA. September 12–15, 2010. pp. 993-1000. ASME. https://doi.org/10.1115/DSCC2010-4285
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