DocumentCode :
664315
Title :
A new robust damping and tracking controller for high speed nanopositioning
Author :
Das, Sajal K. ; Pota, Hemanshu R. ; Petersen, Ian R.
Author_Institution :
Sch. of Eng. & Inf. Technol. (SEIT), Univ. of New South Wales, Canberra, ACT, Australia
fYear :
2013
fDate :
4-5 Nov. 2013
Firstpage :
473
Lastpage :
478
Abstract :
This paper presents the design and implementation of a novel control architecture with a resonant controller, an integral controller, and a velocity feedback controller to improve the high speed imaging performance of a nanopositioning stage, piezoelectric tube scanner (PTS) used in most of the commercial atomic force microscopes (AFMs). The design of the controller is done by considering the lateral and longitudinal axes of the PTS as an independent single-input single-output (SISO) system. The controller proposed in this paper is able to achieve a bandwidth close to the first resonance frequency of the PTS and the controller is robust against the changes in resonance frequency of the scanner due to the load change on the scanner. The performance of the proposed controller is illustrated by comparing with an integral controller and it is shown that the bandwidth increased by the proposed controller is five times greater than the bandwidth that can be achieved by using the integral controller in a commercial scanner. Experimental images with the open-loop, closed-loop and built-in AFM proportional integral controller are presented at scanning rates of 15.62 Hz, 31.25 Hz, 62.5 Hz, and 125 Hz to demonstrate the advantage of the proposed controller.
Keywords :
PI control; atomic force microscopy; closed loop systems; control system synthesis; damping; feedback; nanopositioning; open loop systems; physical instrumentation control; piezoelectric devices; robust control; velocity control; PTS; atomic force microscopes; built-in AFM proportional integral controller; closed-loop proportional integral controller; control architecture; high speed imaging performance improvement; high speed nanopositioning; lateral axes; load change; longitudinal axes; open-loop proportional integral controller; piezoelectric tube scanner; resonance frequency; resonant controller; robust damping; single-input single-output system; tracking controller; velocity feedback controller; Bandwidth; Closed loop systems; Damping; Electron tubes; Frequency control; Frequency measurement; Resonant frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (AUCC), 2013 3rd Australian
Conference_Location :
Fremantle, WA
Print_ISBN :
978-1-4799-2497-4
Type :
conf
DOI :
10.1109/AUCC.2013.6697319
Filename :
6697319
Link To Document :
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