Experimental determination of the viscous flow permeability of porous materials by measuring reflected low frequency acoustic waves
Author(s) -
Amine Berbiche,
M. Sadouki,
Zine El Abiddine Fellah,
Erick Ogam,
M. Fellah,
F.G. Mitri,
Claude Dépollier
Publication year - 2016
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.4939073
Subject(s) - permeability (electromagnetism) , porosity , reflection coefficient , porous medium , materials science , resistive touchscreen , acoustics , reflection (computer programming) , mechanics , low frequency , optics , composite material , physics , chemistry , computer science , biochemistry , astronomy , membrane , programming language , computer vision
International audienceAn acoustic reflectivity method is proposed for measuring the permeability or flow resistivity of air-saturated porous materials. In this method, a simplified expression of the reflection coefficient is derived in the Darcy's regime (low frequency range), which does not depend on frequency and porosity. Numerical simulations show that the reflection coefficient of a porous material can be approximated by its simplified expression obtained from its Taylor development to the first order. This approximation is good especially for resistive materials (of low permeability) and for the lower frequencies. The permeability is reconstructed by solving the inverse problem using waves reflected by plastic foam samples, at different frequency bandwidths in the Darcy regime. The proposed method has the advantage of being simple compared to the conventional methods that use experimental reflected data, and is complementary to the transmissivity method which is more adapted to low resistive materials (high permeability)
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