Multilayer modeling of thermoacoustic sound ...
Document type :
Compte-rendu et recension critique d'ouvrage
Title :
Multilayer modeling of thermoacoustic sound generation for thermophone analysis and design
Author(s) :
Guiraud, Pierre [Auteur correspondant]
Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Centro de Investigación y Modelamiento de Fenómenos Aleatorios – Valparaíso [CIMFAV]
Giordano, Stefano [Auteur correspondant]
Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Bou Matar Lacaze, Olivier [Auteur correspondant]
Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Pernod, Philippe [Auteur correspondant]
Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Lardat, Raphael [Auteur correspondant]
Temex
Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Centro de Investigación y Modelamiento de Fenómenos Aleatorios – Valparaíso [CIMFAV]
Giordano, Stefano [Auteur correspondant]

Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Bou Matar Lacaze, Olivier [Auteur correspondant]

Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Pernod, Philippe [Auteur correspondant]

Acoustique Impulsionnelle & Magnéto-Acoustique Non linéaire - Fluides, Interfaces Liquides & Micro-Systèmes - IEMN [AIMAN-FILMS - IEMN]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Lardat, Raphael [Auteur correspondant]
Temex
Journal title :
Journal of Sound and Vibration
Pages :
275-298
Publisher :
Elsevier
Publication date :
2019-09
ISSN :
0022-460X
English keyword(s) :
Thermoacoustics
Thermophone
Sound generation
Nanomaterials
Thermophone
Sound generation
Nanomaterials
HAL domain(s) :
Physique [physics]/Mécanique [physics]
Physique [physics]/Mécanique [physics]/Acoustique [physics.class-ph]
Physique [physics]/Mécanique [physics]/Acoustique [physics.class-ph]
English abstract : [en]
A general model for thermoacoustic sound generation, based on the classical conservation laws of mass, momentum and energy, is presented and adopted to analyze different thermophone structures. This model is able to describe ...
Show more >A general model for thermoacoustic sound generation, based on the classical conservation laws of mass, momentum and energy, is presented and adopted to analyze different thermophone structures. This model is able to describe an arbitrary multilayered (or laminated) system composed of both solid and fluid layers. In each layer, we consider the propagation of thermal and acoustic plane waves with a full thermo-visco-elastic coupling and with both thermal and viscous dissipations. In order to obtain a flexible model, useful for most of thermophone systems, the balance equations are written in a general and adaptable matrix form. By adding the continuity of temperature, particle velocity, normal stress and heat flux between the layers, we obtain a closed system of equations, which allows for the calculation of all the acoustic variables at any position and for any input frequency and power. The proposed technique is then applied to several thermophone archi-tectures working in air or in water, and the results are discussed and compared to those of some recent theoretical and experimental investigations. Finally, the approach elaborated here is useful for unifying various theories proposed for distinct thermophone systems and to generalize these approaches in terms of different geometrical and physical features .Show less >
Show more >A general model for thermoacoustic sound generation, based on the classical conservation laws of mass, momentum and energy, is presented and adopted to analyze different thermophone structures. This model is able to describe an arbitrary multilayered (or laminated) system composed of both solid and fluid layers. In each layer, we consider the propagation of thermal and acoustic plane waves with a full thermo-visco-elastic coupling and with both thermal and viscous dissipations. In order to obtain a flexible model, useful for most of thermophone systems, the balance equations are written in a general and adaptable matrix form. By adding the continuity of temperature, particle velocity, normal stress and heat flux between the layers, we obtain a closed system of equations, which allows for the calculation of all the acoustic variables at any position and for any input frequency and power. The proposed technique is then applied to several thermophone archi-tectures working in air or in water, and the results are discussed and compared to those of some recent theoretical and experimental investigations. Finally, the approach elaborated here is useful for unifying various theories proposed for distinct thermophone systems and to generalize these approaches in terms of different geometrical and physical features .Show less >
Language :
Anglais
Popular science :
Non
Source :
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