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Optimal Control for X-Ray Microscopes

delete2020-04-01
delete7
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OA
AI
S
Sheikh T. Mashrafi
J
Junjing Deng
C
Curt Preissner
S
Srinivasa M. Salapaka *
DOI:10.1109/TMECH.2020.2974318delete
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摘要

摘要

En 中文
In this article, a systematic framework for designing the control for fine positioning (scanning) stages of X-ray microscopes is presented. This framework facilitates designs that simultaneously achieve specifications on positioning resolution and tracking bandwidth while guaranteeing robustness of the closed loop device to unmodeled uncertainties. We use robust optimal control techniques for modeling, quantifying design objectives and system-specific challenges, and designing the control laws. The control designs were implemented on a three degree of freedom piezoactuated flexure stages dedicated for fine positioning of X-ray optics. Experimental results demonstrate significant improvements in positioning performance of 134%, 150%, and 132% in tracking bandwidths along the lateral (X), vertical (Y), and beam (Z) directions, respectively, when compared to proportional-integral-derivative controller designs. This was achieved while keeping similar or better positioning resolution and robustness measures. Fast scanning for X-ray imaging was demonstrated in both the step scan and flyscan modes, where bandwidth was improved by over 450 times with flyscan compared to the step scan.
Keyword:
Disturbance rejection
nanopositioning system
noise attenuation
positioning resolution
robust control
tracking bandwidth
X-ray microscope

期刊

I
IEEE-ASME Transactions on Mechatronics
IF:
7.3
论文数:
5.4K
被引数:
2.4W

机构

U
University of Illinois Urbana-Champaign
学者数:
2.4W
论文数: 2.0W
被引数: 35
University of Illinois System 封面图
University of Illinois System
学者数:
6.8W
论文数: 6.2W
被引数: 644
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