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Physical fundamentals of oscillations: frequency analysis of periodic motion stability

The book introduces possibly the most compact, simple and physically understandable tool that can describe, explain, predict and design the widest set of phenomena in time-variant and nonlinear oscillations. The phenomena described include parametric resonances, combined resonances, instability of f...

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Detalles Bibliográficos
Autores principales: Chechurin, Leonid, Chechurin, Sergej
Lenguaje:eng
Publicado: Springer 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-75154-2
http://cds.cern.ch/record/2685162
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author Chechurin, Leonid
Chechurin, Sergej
author_facet Chechurin, Leonid
Chechurin, Sergej
author_sort Chechurin, Leonid
collection CERN
description The book introduces possibly the most compact, simple and physically understandable tool that can describe, explain, predict and design the widest set of phenomena in time-variant and nonlinear oscillations. The phenomena described include parametric resonances, combined resonances, instability of forced oscillations, synchronization, distributed parameter oscillation and flatter, parametric oscillation control, robustness of oscillations and many others. Although the realm of nonlinear oscillations is enormous, the book relies on the concept of minimum knowledge for maximum understanding. This unique tool is the method of stationarization, or one frequency approximation of parametric resonance problem analysis in linear time-variant dynamic systems. The book shows how this can explain periodic motion stability in stationary nonlinear dynamic systems, and reveals the link between the harmonic stationarization coefficients and describing functions. As such, the book speaks the language of control: transfer functions, frequency response, Nyquist plot, stability margins, etc. An understanding of the physics of stability loss is the basis for the design of new oscillation control methods for, several of which are presented in the book. These and all the other findings are illustrated by numerical examples, which can be easily reproduced by readers equipped with a basic simulation package like MATLAB with Simulink. The book offers a simple tool for all those travelling through the world of oscillations, helping them discover its hidden beauty. Researchers can use the method to uncover unknown aspects, and as a reference to compare it with other, for example, abstract mathematical means. Further, it provides engineers with a minimalistic but powerful instrument based on physically measurable variables to analyze and design oscillatory systems.
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spelling cern-26851622021-04-21T18:21:17Zdoi:10.1007/978-3-319-75154-2http://cds.cern.ch/record/2685162engChechurin, LeonidChechurin, SergejPhysical fundamentals of oscillations: frequency analysis of periodic motion stabilityEngineeringThe book introduces possibly the most compact, simple and physically understandable tool that can describe, explain, predict and design the widest set of phenomena in time-variant and nonlinear oscillations. The phenomena described include parametric resonances, combined resonances, instability of forced oscillations, synchronization, distributed parameter oscillation and flatter, parametric oscillation control, robustness of oscillations and many others. Although the realm of nonlinear oscillations is enormous, the book relies on the concept of minimum knowledge for maximum understanding. This unique tool is the method of stationarization, or one frequency approximation of parametric resonance problem analysis in linear time-variant dynamic systems. The book shows how this can explain periodic motion stability in stationary nonlinear dynamic systems, and reveals the link between the harmonic stationarization coefficients and describing functions. As such, the book speaks the language of control: transfer functions, frequency response, Nyquist plot, stability margins, etc. An understanding of the physics of stability loss is the basis for the design of new oscillation control methods for, several of which are presented in the book. These and all the other findings are illustrated by numerical examples, which can be easily reproduced by readers equipped with a basic simulation package like MATLAB with Simulink. The book offers a simple tool for all those travelling through the world of oscillations, helping them discover its hidden beauty. Researchers can use the method to uncover unknown aspects, and as a reference to compare it with other, for example, abstract mathematical means. Further, it provides engineers with a minimalistic but powerful instrument based on physically measurable variables to analyze and design oscillatory systems.Springeroai:cds.cern.ch:26851622017
spellingShingle Engineering
Chechurin, Leonid
Chechurin, Sergej
Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title_full Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title_fullStr Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title_full_unstemmed Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title_short Physical fundamentals of oscillations: frequency analysis of periodic motion stability
title_sort physical fundamentals of oscillations: frequency analysis of periodic motion stability
topic Engineering
url https://dx.doi.org/10.1007/978-3-319-75154-2
http://cds.cern.ch/record/2685162
work_keys_str_mv AT chechurinleonid physicalfundamentalsofoscillationsfrequencyanalysisofperiodicmotionstability
AT chechurinsergej physicalfundamentalsofoscillationsfrequencyanalysisofperiodicmotionstability