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Self-oscillations in dynamic systems: a new methodology via two-relay controllers

This monograph presents a simple and efficient two-relay control algorithm for generation of self-excited oscillations of a desired amplitude and frequency in dynamic systems. Developed by the authors, the two-relay controller consists of two relays switched by the feedback received from a linear or...

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Detalles Bibliográficos
Autores principales: Aguilar, Luis T, Boiko, Igor, Fridman, Leonid, Iriarte, Rafael
Lenguaje:eng
Publicado: Springer 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-23303-1
http://cds.cern.ch/record/2112868
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author Aguilar, Luis T
Boiko, Igor
Fridman, Leonid
Iriarte, Rafael
author_facet Aguilar, Luis T
Boiko, Igor
Fridman, Leonid
Iriarte, Rafael
author_sort Aguilar, Luis T
collection CERN
description This monograph presents a simple and efficient two-relay control algorithm for generation of self-excited oscillations of a desired amplitude and frequency in dynamic systems. Developed by the authors, the two-relay controller consists of two relays switched by the feedback received from a linear or nonlinear system, and represents a new approach to the self-generation of periodic motions in underactuated mechanical systems. The first part of the book explains the design procedures for two-relay control using three different methodologies – the describing-function method, Poincaré maps, and the locus-of-a perturbed-relay-system method – and concludes with stability analysis of designed periodic oscillations. Two methods to ensure the robustness of two-relay control algorithms are explored in the second part, one based on the combination of the high-order sliding mode controller and backstepping, and the other on higher-order sliding-modes-based reconstruction of uncertainties and their compensation where Lyapunov-based stability analysis of tracking error is used. Finally, the third part illustrates applications of self-oscillation generation by a two-relay control with a Furuta pendulum, wheel pendulum, 3-DOF underactuated robot, 3-DOF laboratory helicopter, and fixed-phase electronic circuits. Self-Oscillations in Dynamic Systems will appeal to engineers, researchers, and graduate students working on the tracking and self-generation of periodic motion of electromechanical systems, including non-minimum-phase systems. It will also be of interest to mathematicians working on analysis of periodic solutions.
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spelling cern-21128682021-04-21T20:00:47Zdoi:10.1007/978-3-319-23303-1http://cds.cern.ch/record/2112868engAguilar, Luis TBoiko, IgorFridman, LeonidIriarte, RafaelSelf-oscillations in dynamic systems: a new methodology via two-relay controllersMathematical Physics and MathematicsThis monograph presents a simple and efficient two-relay control algorithm for generation of self-excited oscillations of a desired amplitude and frequency in dynamic systems. Developed by the authors, the two-relay controller consists of two relays switched by the feedback received from a linear or nonlinear system, and represents a new approach to the self-generation of periodic motions in underactuated mechanical systems. The first part of the book explains the design procedures for two-relay control using three different methodologies – the describing-function method, Poincaré maps, and the locus-of-a perturbed-relay-system method – and concludes with stability analysis of designed periodic oscillations. Two methods to ensure the robustness of two-relay control algorithms are explored in the second part, one based on the combination of the high-order sliding mode controller and backstepping, and the other on higher-order sliding-modes-based reconstruction of uncertainties and their compensation where Lyapunov-based stability analysis of tracking error is used. Finally, the third part illustrates applications of self-oscillation generation by a two-relay control with a Furuta pendulum, wheel pendulum, 3-DOF underactuated robot, 3-DOF laboratory helicopter, and fixed-phase electronic circuits. Self-Oscillations in Dynamic Systems will appeal to engineers, researchers, and graduate students working on the tracking and self-generation of periodic motion of electromechanical systems, including non-minimum-phase systems. It will also be of interest to mathematicians working on analysis of periodic solutions.Springeroai:cds.cern.ch:21128682015
spellingShingle Mathematical Physics and Mathematics
Aguilar, Luis T
Boiko, Igor
Fridman, Leonid
Iriarte, Rafael
Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title_full Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title_fullStr Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title_full_unstemmed Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title_short Self-oscillations in dynamic systems: a new methodology via two-relay controllers
title_sort self-oscillations in dynamic systems: a new methodology via two-relay controllers
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-3-319-23303-1
http://cds.cern.ch/record/2112868
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AT fridmanleonid selfoscillationsindynamicsystemsanewmethodologyviatworelaycontrollers
AT iriarterafael selfoscillationsindynamicsystemsanewmethodologyviatworelaycontrollers