0000000000599468

AUTHOR

A. Elayouch

showing 4 related works from this author

Extensive tailorability of sound absorption using acoustic metamaterials

2017

We present an experimental demonstration of sound absorption tailorability, using acoustic metamaterials made of resonant cavities that does not rely on any dissipative material. As confirmed by numerical calculation, we particularly show that using quarter-wave-like resonators made of deep subwavelength slits allows a high confinement of the acoustic energy of an incident wave. This leads to enhance the dissipation in the cavities and, consequently, generates strong sound absorption, even over a wide frequency band. We finally demonstrate experimentally the key role of the filling ratio in tailoring such an absorption, using a metamaterial constituted of space-coiled cavities embedded in a…

[SPI.ACOU]Engineering Sciences [physics]/Acoustics [physics.class-ph]Materials scienceFrequency bandAcousticsFOS: Physical sciencesGeneral Physics and AstronomyAcoustic energyPhysics::OpticsApplied Physics (physics.app-ph)Physics - Applied Physics02 engineering and technologyDissipation021001 nanoscience & nanotechnology01 natural sciences3. Good health[SPI.MAT]Engineering Sciences [physics]/MaterialsLow volumeResonatorIncident wave0103 physical sciencesBroadbandAcoustic metamaterials[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics010306 general physics0210 nano-technology
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Subwavelength sound screening by coupling space-coiled Fabry-Perot resonators

2017

We explore broadband and omnidirectional low frequency sound screening based on locally resonant acoustic metamaterials. We show that the coupling of different resonant modes supported by Fabry-Perot cavities can efficiently generate asymmetric lineshapes in the transmission spectrum, leading to a broadband sound opacity. The Fabry-Perot cavities are space-coiled in order to shift the resonant modes under the diffraction edge, which guaranty the opacity band for all incident angles. Indeed, the deep subwavelength feature of the cavities leads to avoid diffraction that have been proved to be the main limitation of omnidirectional capabilities of locally resonant perforated plates. We experim…

PhysicsDiffractionOpacitybusiness.industryAttenuationGeneral Physics and AstronomyMetamaterialPhysics::OpticsFOS: Physical sciencesPhysics - Applied Physics02 engineering and technologyAcoustic waveApplied Physics (physics.app-ph)021001 nanoscience & nanotechnology01 natural sciencesResonatorWavelengthOptics0103 physical sciences010306 general physics0210 nano-technologybusinessFabry–Pérot interferometer
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Guiding and confinement of interface acoustic waves in solid-fluid pillar-based phononic crystals

2016

International audience; Pillar-based phononic crystals exhibit some unique wave phenomena due to the interaction between surface acoustic modes of the substrate and local resonances supported by pillars. In this paper, we extend the investigations by taking into account the presence of a liquid medium. We particularly demonstrate that local resonances dramatically decrease the phase velocity of Scholte-Stoneley wave, which leads to a slow wave at the solid/fluid interface. Moreover, we show that increasing the height of pillars introduces a new set of branches of interface modes and drastically affects the acoustic energy localization. Indeed, while some modes display a highly confined pres…

[SPI.ACOU]Engineering Sciences [physics]/Acoustics [physics.class-ph]010302 applied physicsPhysical acousticsMaterials scienceAcousticsMicrofluidicsSurface acoustic waveGeneral Physics and Astronomy02 engineering and technologyAcoustic waveMechanics021001 nanoscience & nanotechnologyIon acoustic wave01 natural scienceslcsh:QC1-999Finite element method[SPI.MAT]Engineering Sciences [physics]/MaterialsPhysics::Fluid Dynamics0103 physical sciences[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/MicroelectronicsPhase velocity0210 nano-technologylcsh:PhysicsAcoustic resonanceAIP Advances
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Density-near-zero using the acoustically induced transparency of a Fano acoustic resonator

2016

International audience; We report experimental results of near-zero mass density involving an acoustic metamaterial supporting Fano resonance. For this, we designed and fabricated an acoustic resonator with two closely coupled modes and measured its transmission properties. Our study reveals that the phenomenon of acoustically induced transparency is accompanied by an effect of near-zero density. Indeed, the dynamic effective parameters obtained from experimental data show the presence of a frequency band where the effective mass density is close to zero, with high transmission levels reaching 0.7. Furthermore, we demonstrate that such effective parameters lead to wave guiding in a 90-degre…

PhysicsWavefront[SPI.ACOU]Engineering Sciences [physics]/Acoustics [physics.class-ph]business.industryFrequency bandAcousticsGeneral Physics and AstronomyMetamaterialFano resonance02 engineering and technologyFano plane021001 nanoscience & nanotechnology01 natural sciences[SPI.MAT]Engineering Sciences [physics]/MaterialsResonatorOpticsEffective mass (solid-state physics)High transmission0103 physical sciences[SPI.NANO]Engineering Sciences [physics]/Micro and nanotechnologies/Microelectronics010306 general physics0210 nano-technologybusiness
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