Cargando…

Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids

The traditional acoustic attenuation coefficient is derived from an analogy of the attenuation of an electromagnetic wave propagating inside a non-ideal medium, featuring only the attenuation of wave propagation. Nonetheless, the particles inside viscous solids have mass, vibrating energy, viscosity...

Descripción completa

Detalles Bibliográficos
Autores principales: Fa, Lin, Li, Lili, Gong, Hong, Chen, Wenhui, Jiang, Jing, You, Guoqiang, Liang, Jifeng, Zhang, Yandong, Zhao, Meishan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9504291/
https://www.ncbi.nlm.nih.gov/pubmed/36144149
http://dx.doi.org/10.3390/mi13091526
_version_ 1784796178686148608
author Fa, Lin
Li, Lili
Gong, Hong
Chen, Wenhui
Jiang, Jing
You, Guoqiang
Liang, Jifeng
Zhang, Yandong
Zhao, Meishan
author_facet Fa, Lin
Li, Lili
Gong, Hong
Chen, Wenhui
Jiang, Jing
You, Guoqiang
Liang, Jifeng
Zhang, Yandong
Zhao, Meishan
author_sort Fa, Lin
collection PubMed
description The traditional acoustic attenuation coefficient is derived from an analogy of the attenuation of an electromagnetic wave propagating inside a non-ideal medium, featuring only the attenuation of wave propagation. Nonetheless, the particles inside viscous solids have mass, vibrating energy, viscosity, and inertia of motion, and they go through transient and damping attenuation processes. Based on the long-wavelength approximation, in this paper, we use the energy conservation law to analyze the effect of the viscosity of the medium on acoustic attenuation. We derive the acoustic attenuation coefficient by combinations of the dynamical equation of a solid in an acoustic field with conventional longitudinal wave propagation under a spring oscillator model. Considering the attenuation of propagating waves and the damping attenuation of particle vibration, we develop a frequency dispersion relation of phase velocity for the longitudinal wave propagating inside viscous solid media. We find that the acoustic impulse response and vibrational system function depends on the physical properties of the viscous solid media and their internal structure. Combined with system function, the impulse response can be an excellent tool to invert the physical properties of solids and their internal structures. We select a well-known rock sample for analysis, calculate the impulse response and vibrational system function, and reveal new physical insight into creating acoustic attenuation and frequency dispersion of phase velocity. The results showed that the newly developed acoustic attenuation coefficients enjoy a substantial improvement over the conventional acoustic attenuation coefficients reported in the literature, which is essential for industrial applications; so are the dispersion characteristics.
format Online
Article
Text
id pubmed-9504291
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-95042912022-09-24 Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids Fa, Lin Li, Lili Gong, Hong Chen, Wenhui Jiang, Jing You, Guoqiang Liang, Jifeng Zhang, Yandong Zhao, Meishan Micromachines (Basel) Article The traditional acoustic attenuation coefficient is derived from an analogy of the attenuation of an electromagnetic wave propagating inside a non-ideal medium, featuring only the attenuation of wave propagation. Nonetheless, the particles inside viscous solids have mass, vibrating energy, viscosity, and inertia of motion, and they go through transient and damping attenuation processes. Based on the long-wavelength approximation, in this paper, we use the energy conservation law to analyze the effect of the viscosity of the medium on acoustic attenuation. We derive the acoustic attenuation coefficient by combinations of the dynamical equation of a solid in an acoustic field with conventional longitudinal wave propagation under a spring oscillator model. Considering the attenuation of propagating waves and the damping attenuation of particle vibration, we develop a frequency dispersion relation of phase velocity for the longitudinal wave propagating inside viscous solid media. We find that the acoustic impulse response and vibrational system function depends on the physical properties of the viscous solid media and their internal structure. Combined with system function, the impulse response can be an excellent tool to invert the physical properties of solids and their internal structures. We select a well-known rock sample for analysis, calculate the impulse response and vibrational system function, and reveal new physical insight into creating acoustic attenuation and frequency dispersion of phase velocity. The results showed that the newly developed acoustic attenuation coefficients enjoy a substantial improvement over the conventional acoustic attenuation coefficients reported in the literature, which is essential for industrial applications; so are the dispersion characteristics. MDPI 2022-09-15 /pmc/articles/PMC9504291/ /pubmed/36144149 http://dx.doi.org/10.3390/mi13091526 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fa, Lin
Li, Lili
Gong, Hong
Chen, Wenhui
Jiang, Jing
You, Guoqiang
Liang, Jifeng
Zhang, Yandong
Zhao, Meishan
Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title_full Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title_fullStr Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title_full_unstemmed Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title_short Investigation of the Physical Mechanism of Acoustic Attenuation in Viscous Isotropic Solids
title_sort investigation of the physical mechanism of acoustic attenuation in viscous isotropic solids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9504291/
https://www.ncbi.nlm.nih.gov/pubmed/36144149
http://dx.doi.org/10.3390/mi13091526
work_keys_str_mv AT falin investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT lilili investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT gonghong investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT chenwenhui investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT jiangjing investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT youguoqiang investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT liangjifeng investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT zhangyandong investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids
AT zhaomeishan investigationofthephysicalmechanismofacousticattenuationinviscousisotropicsolids