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A Modified Positive Velocity and Position Feedback scheme with delay compensation for improved nanopositioning performance

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TLDR
In this article, a controller design to compensate the effects of time delay in a flexure-based piezoelectric stack driven nanopositioner is presented. And a theoretical model which takes into account the dependence between the sampling time and the delay introduced is proposed.
Abstract
This paper presents a controller design to compensate the effects of time delay in a flexure-based piezoelectric stack driven nanopositioner. The effects of the time delay in flexure nanopositioners is illustrated and identified by means of experimentally obtaining the frequency response of the system. Moreover, a theoretical model which takes into account the dependence between the sampling time and the delay introduced is proposed. The proposed control design methodology not only accommodates for time delay but also ensures the robust stability and allows its application to systems with a larger delay than other schemes proposed previously. Limitations and future work are discussed.

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Journal ArticleDOI

Evaluating the performance of robust controllers for a nanopositioning platform under loading.

TL;DR: The best performance, in terms of the H∞ norm over the range of uncertainty, is achieved using the IRC control scheme, which provides more accurate tracking of a reference signal.
Proceedings ArticleDOI

H ∞ control for piezo-actuated nanopositioning stages with time delays

TL;DR: Real time experiments with the proposed control design are conducted on a piezo-actuated nanopositioning stage, where high precision motions, robustness against model uncertainties, as well as hysteresis compensation capability are demonstrated, which significantly outperforms traditional PI control approach.
Book ChapterDOI

Multilevel Inverter-Based Power Quality Improvement in Grid-Connected DVR System

TL;DR: In this paper, the dynamic voltage restorer is discussed with the multilevel inverter to prevent the equipment failures and protect sensitive loads, and the MLI inverter-based system is achieving the compensation in distribution network.
Proceedings ArticleDOI

Positive velocity feedback control of flexure-based actuator for vibration suppression

TL;DR: The experiment results validate that the PVF control strategy presented in this paper can restrain vibration in nanopositioning stages effectively, and reduce resonance peak in velocity loop by 2dB, and increase the bandwidth by more than 40Hz.
Journal ArticleDOI

Cascaded fuzzy logic control of photovoltaic fed dynamic voltage restorer for power distribution systems

TL;DR: In this paper , an intelligent control based Cascaded fuzzy logic control is implemented to control the voltage source inverter (VSI) to compensate the power quality issues and the performance of the proposed system exhibits the excellent compensation of voltage issues under grid connection such as, sags, swells and oscillations.
References
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Book

Control System Design

TL;DR: A key aspect of the book is the frequent use of real world design examples drawn directly from the authors' industrial experience, represented by over 15 substantial case studies ranging from distillation columns to satellite tracking.
Journal ArticleDOI

A Survey of Control Issues in Nanopositioning

TL;DR: This paper presents an overview of nanopositioning technologies and devices emphasizing the key role of advanced control techniques in improving precision, accuracy, and speed of operation of these systems.
Journal ArticleDOI

Positive position feedback control for large space structures

TL;DR: In this paper, a new technique for vibration suppression in large space structures is investigated in laboratory experiments on a thin cantilever beam, which makes use of generalized displacement measurements to accomplish vibration suppression.
Journal ArticleDOI

Subspace-based multivariable system identification from frequency response data

TL;DR: Two noniterative subspace-based algorithms which identify linear, time-invariant MIMO (multi-input/multioutput) systems from frequency response data are presented.
Book

Digital control system analysis and design

TL;DR: The present book by Phillips and Nagle is one of such recent books in discrete-data control systems that has a renewed interest in digital control systems.
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