A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials

Research on phononic and acoustic materials and structures emerged in the recent decade as a result of switching from theoretical physics to applications in various engineering fields. Periodicity is the main characteristic of the phononic medium stemming from periodic material phases, geometry or t...

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Main Authors: Cajić Milan, Karličić Danilo, Paunović Stepa, Adhikari Sondipon
Format: Article
Language:English
Published: Serbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, Belgrade 2020-01-01
Series:Theoretical and Applied Mechanics
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/1450-5584/2020/1450-55842000003C.pdf
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spelling doaj-9cf9da8f72f24b00a309a938fdf270c12020-11-25T01:27:01ZengSerbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, BelgradeTheoretical and Applied Mechanics1450-55842406-09252020-01-01471819710.2298/TAM200117003C1450-55842000003CA fractional calculus approach to metadamping in phononic crystals and acoustic metamaterialsCajić Milan0Karličić Danilo1Paunović Stepa2Adhikari Sondipon3Mathematical Institute SANU Belgrade SerbiaSwansea University Swansea United Kingdom + Mathematical Institute SANU Belgrade SerbiaMathematical Institute SANU Belgrade SerbiaSwansea University Swansea United KingdomResearch on phononic and acoustic materials and structures emerged in the recent decade as a result of switching from theoretical physics to applications in various engineering fields. Periodicity is the main characteristic of the phononic medium stemming from periodic material phases, geometry or the boundary condition with wave propagation properties analysed through frequency band structure. To obtain these characteristics, the generalized Bloch theorem is usually applied to obtain the dispersion relations of viscously damped resonant metamaterials. Here we develop a novel analytical approach to analyse the fractionally damped model of phononic crystals and acoustic metamaterials introduced through the fractional-order Kelvin–Voigt and Maxwell damping models. In the numerical study, the results obtained using the proposed models are compared against the elastic cases of the phononic crystal and locally resonant acoustic metamaterial, where significant differences in dispersion curves are identified. We show that the fractional-order Maxwell model is more suitable for describing the dissipation effect throughout the spectrum due to the possibility of fitting both, the order of fractional derivative and the damping parameter.http://www.doiserbia.nb.rs/img/doi/1450-5584/2020/1450-55842000003C.pdfphononic crystalsacoustic metamaterialsdissipationfractional viscoelasticitydispersion relations
collection DOAJ
language English
format Article
sources DOAJ
author Cajić Milan
Karličić Danilo
Paunović Stepa
Adhikari Sondipon
spellingShingle Cajić Milan
Karličić Danilo
Paunović Stepa
Adhikari Sondipon
A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
Theoretical and Applied Mechanics
phononic crystals
acoustic metamaterials
dissipation
fractional viscoelasticity
dispersion relations
author_facet Cajić Milan
Karličić Danilo
Paunović Stepa
Adhikari Sondipon
author_sort Cajić Milan
title A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
title_short A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
title_full A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
title_fullStr A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
title_full_unstemmed A fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
title_sort fractional calculus approach to metadamping in phononic crystals and acoustic metamaterials
publisher Serbian Society of Mechanics & Mathematical Institute of the Serbian Academy of Sciences and Arts, Belgrade
series Theoretical and Applied Mechanics
issn 1450-5584
2406-0925
publishDate 2020-01-01
description Research on phononic and acoustic materials and structures emerged in the recent decade as a result of switching from theoretical physics to applications in various engineering fields. Periodicity is the main characteristic of the phononic medium stemming from periodic material phases, geometry or the boundary condition with wave propagation properties analysed through frequency band structure. To obtain these characteristics, the generalized Bloch theorem is usually applied to obtain the dispersion relations of viscously damped resonant metamaterials. Here we develop a novel analytical approach to analyse the fractionally damped model of phononic crystals and acoustic metamaterials introduced through the fractional-order Kelvin–Voigt and Maxwell damping models. In the numerical study, the results obtained using the proposed models are compared against the elastic cases of the phononic crystal and locally resonant acoustic metamaterial, where significant differences in dispersion curves are identified. We show that the fractional-order Maxwell model is more suitable for describing the dissipation effect throughout the spectrum due to the possibility of fitting both, the order of fractional derivative and the damping parameter.
topic phononic crystals
acoustic metamaterials
dissipation
fractional viscoelasticity
dispersion relations
url http://www.doiserbia.nb.rs/img/doi/1450-5584/2020/1450-55842000003C.pdf
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