Bio-inspired non self-similar hierarchical ...
Type de document :
Communication dans un congrès avec actes
Titre :
Bio-inspired non self-similar hierarchical elastic metamaterials
Auteur(s) :
Miniaci, Marco [Auteur correspondant]
Swiss Federal Laboratories for Materials Science and Technology [Dübendorf] [EMPA]
California Institute of Technology [CALTECH]
Acoustique - IEMN [ACOUSTIQUE - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Swiss Federal Laboratories for Materials Science and Technology [Dübendorf] [EMPA]
California Institute of Technology [CALTECH]
Acoustique - IEMN [ACOUSTIQUE - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Titre de la manifestation scientifique :
24th International Congress on Acoustics 2022
Ville :
Gyeongju
Pays :
Corée du Sud
Date de début de la manifestation scientifique :
2022-10-24
Mot(s)-clé(s) en anglais :
Bio-inspiration
Chirality
Metamaterials
Phononic Crystals
Sound Insulation
Chirality
Metamaterials
Phononic Crystals
Sound Insulation
Discipline(s) HAL :
Sciences de l'ingénieur [physics]
Sciences de l'ingénieur [physics]/Acoustique [physics.class-ph]
Sciences de l'ingénieur [physics]/Acoustique [physics.class-ph]
Résumé en anglais : [en]
Nature has always represented a fundamental source of inspiration to solve mankind's scientific challenges and engineering tasks. For instance, it has been shown that a hierarchical organization over multiple length scales ...
Lire la suite >Nature has always represented a fundamental source of inspiration to solve mankind's scientific challenges and engineering tasks. For instance, it has been shown that a hierarchical organization over multiple length scales allows enhanced quasi-static mechanical properties, while the relative orientation of adjacent chiral centers may affect the physical properties of a polymer, and internal heterogeneous architectures may result in shape changing systems, to cite a few examples. In this paper, we discuss some examples of how bio-inspiration may be used to enhance the potential of phononic crystals and acoustic metamaterials in terms of vibration attenuation and control of wave propagation.Lire moins >
Lire la suite >Nature has always represented a fundamental source of inspiration to solve mankind's scientific challenges and engineering tasks. For instance, it has been shown that a hierarchical organization over multiple length scales allows enhanced quasi-static mechanical properties, while the relative orientation of adjacent chiral centers may affect the physical properties of a polymer, and internal heterogeneous architectures may result in shape changing systems, to cite a few examples. In this paper, we discuss some examples of how bio-inspiration may be used to enhance the potential of phononic crystals and acoustic metamaterials in terms of vibration attenuation and control of wave propagation.Lire moins >
Langue :
Anglais
Comité de lecture :
Oui
Audience :
Internationale
Vulgarisation :
Non
Projet Européen :
Source :