Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions

The mitigation properties of metaconcrete cast with two types of resonant inclusions are assessed through wave transmission tests. Three cylindric metaconcrete specimens of regular size (20 cm height, 10 cm diameter), containing an equal number of different type of inclusions disposed in a semi-regu...

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Main Authors: Deborah Briccola, Anna Pandolfi
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-01-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2020.615189/full
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spelling doaj-14262e7f7bab44b490c3c91c3287f61b2021-01-20T04:39:20ZengFrontiers Media S.A.Frontiers in Materials2296-80162021-01-01710.3389/fmats.2020.615189615189Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of InclusionsDeborah BriccolaAnna PandolfiThe mitigation properties of metaconcrete cast with two types of resonant inclusions are assessed through wave transmission tests. Three cylindric metaconcrete specimens of regular size (20 cm height, 10 cm diameter), containing an equal number of different type of inclusions disposed in a semi-regular lattice, are tested in the longitudinal direction within the sonic range of frequencies. Inclusions, bi-material spheres consisting of a heavy core coated with a soft material, are characterized by a resonant behavior, evaluated numerically with a finite element modal analysis of a unit metaconcrete cell. Each metaconcrete specimen contains six layers consisting of six engineered aggregates of different type. Inclusions are disposed by rotating each layer with respect to the adjacent ones, as so as to create a pseudo-random arrangement. Specimens are excited by a sinusoidal signal of linearly growing frequency, sweeping a range centered at the translational eigenfrequency of the resonant inclusion. A standard plain concrete specimen is used as reference to define a transmissibility coefficient, that facilitates the quantification of the attenuation properties. With respect to plain concrete, all metaconcrete specimens show a marked (up to 80–90%) attenuation of the transmitted signal in proximity of the numerically estimated eigenfrequency of the inclusion. The intensity of the attenuation is weakly dependent on the type of the inclusion, while the frequency where the attenuation is observed depends markedly on the inclusion type. As a very positive quality in the view of practical applications, experimental results confirm that the attenuation effectiveness of metaconcrete is not related to the ordered microstructural arrangement.https://www.frontiersin.org/articles/10.3389/fmats.2020.615189/fullmetaconcretenon-homogeneous inclusionslinear swept-frequency sinusoidal excitationsignal attenuationsonic rangetransmissibility
collection DOAJ
language English
format Article
sources DOAJ
author Deborah Briccola
Anna Pandolfi
spellingShingle Deborah Briccola
Anna Pandolfi
Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
Frontiers in Materials
metaconcrete
non-homogeneous inclusions
linear swept-frequency sinusoidal excitation
signal attenuation
sonic range
transmissibility
author_facet Deborah Briccola
Anna Pandolfi
author_sort Deborah Briccola
title Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
title_short Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
title_full Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
title_fullStr Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
title_full_unstemmed Analysis on the Dynamic Wave Attenuation Properties of Metaconcrete Considering a Quasi-Random Arrangement of Inclusions
title_sort analysis on the dynamic wave attenuation properties of metaconcrete considering a quasi-random arrangement of inclusions
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2021-01-01
description The mitigation properties of metaconcrete cast with two types of resonant inclusions are assessed through wave transmission tests. Three cylindric metaconcrete specimens of regular size (20 cm height, 10 cm diameter), containing an equal number of different type of inclusions disposed in a semi-regular lattice, are tested in the longitudinal direction within the sonic range of frequencies. Inclusions, bi-material spheres consisting of a heavy core coated with a soft material, are characterized by a resonant behavior, evaluated numerically with a finite element modal analysis of a unit metaconcrete cell. Each metaconcrete specimen contains six layers consisting of six engineered aggregates of different type. Inclusions are disposed by rotating each layer with respect to the adjacent ones, as so as to create a pseudo-random arrangement. Specimens are excited by a sinusoidal signal of linearly growing frequency, sweeping a range centered at the translational eigenfrequency of the resonant inclusion. A standard plain concrete specimen is used as reference to define a transmissibility coefficient, that facilitates the quantification of the attenuation properties. With respect to plain concrete, all metaconcrete specimens show a marked (up to 80–90%) attenuation of the transmitted signal in proximity of the numerically estimated eigenfrequency of the inclusion. The intensity of the attenuation is weakly dependent on the type of the inclusion, while the frequency where the attenuation is observed depends markedly on the inclusion type. As a very positive quality in the view of practical applications, experimental results confirm that the attenuation effectiveness of metaconcrete is not related to the ordered microstructural arrangement.
topic metaconcrete
non-homogeneous inclusions
linear swept-frequency sinusoidal excitation
signal attenuation
sonic range
transmissibility
url https://www.frontiersin.org/articles/10.3389/fmats.2020.615189/full
work_keys_str_mv AT deborahbriccola analysisonthedynamicwaveattenuationpropertiesofmetaconcreteconsideringaquasirandomarrangementofinclusions
AT annapandolfi analysisonthedynamicwaveattenuationpropertiesofmetaconcreteconsideringaquasirandomarrangementofinclusions
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