Applied Mathematics and Mechanics >
Acoustic wave propagation in double-porosity permeo-elastic media
Received date: 2025-03-10
Revised date: 2025-06-06
Online published: 2025-07-28
Supported by
Project supported by the Chilean National Agency for Research and Development (ANID) through Grants ANID FONDECYT Regular (Nos. 1211310 and 1250496), ANID Anillo de Tecnologia (No. ACT240015), and the Polish National Science Centre (NCN) through Grant Agreement (No. 2021/41/B/ST8/04492)
Copyright
The acoustic wave propagation in gas-saturated double-porosity materials composed of a microporous matrix and mesopores with arrays of plate-type resonators is investigated. A macroscopic description, established with the two-scale asymptotic homogenization method, evidences the combined effect of inner resonances on the acoustic properties of the respective effective visco-thermal fluid. One type of resonance originates from strong pore-scale fluid-structure interaction, while the other one arises from pressure diffusion. These phenomena respectively cause weakly and highly damped resonances, which are activated by internal momentum or mass sources, and can largely influence, depending on the material’s morphology, either the effective fluid’s dynamic density, compressibility, or both. We introduce semi-analytical models to illustrate the key effective properties of the studied multiscale metamaterials. The results provide insights for the bottom-up design of multiscale acoustic metamaterials with exotic behaviors, such as the negative, very slow, or supersonic phase velocity, as well as sub-wavelength bandgaps.
C. C. PARRA , R. VENEGAS , T. G. ZIELI?SKI . Acoustic wave propagation in double-porosity permeo-elastic media[J]. Applied Mathematics and Mechanics, 2025 , 46(8) : 1511 -1532 . DOI: 10.1007/s10483-025-3281-8
| [1] | OLNY, X. and BOUTIN, C. Acoustic wave propagation in double porosity media. The Journal of the Acoustical Society of America, 114(1), 73–89 (2003) |
| [2] | VENEGAS, R. and UMNOVA, O. Acoustical properties of double porosity granular materials. The Journal of the Acoustical Society of America, 130(5), 2765–2776 (2011) |
| [3] | VENEGAS, R. and BOUTIN, C. Acoustics of sorptive porous materials. Wave Motion, 68, 162–181 (2017) |
| [4] | VENEGAS, R., BOUTIN, C., and UMNOVA, O. Acoustics of multiscale sorptive porous materials. Physics of Fluids, 29(8), 082006 (2017) |
| [5] | VENEGAS, R. and BOUTIN, C. Acoustics of permeable heterogeneous materials with local non-equilibrium pressure states. Journal of Sound and Vibration, 418, 221–239 (2018) |
| [6] | VENEGAS, R., ZIELI?SKI, T. G., NúNEZ, G., and BéCOT, F. X. Acoustics of porous composites. Composites Part B: Engineering, 220, 109006 (2021) |
| [7] | VENEGAS, R. and BOUTIN, C. Acoustics of permeo-elastic materials. Journal of Fluid Mechanics, 828, 135–174 (2017) |
| [8] | BOUTIN, C. and VENEGAS, R. Pore-scale bending and membrane effects in permeo-elastic media. Mechanics of Materials, 145, 103362 (2020) |
| [9] | BOUTIN, C. and VENEGAS, R. Morphology influence on the acoustic properties of permeo-elastic media. Wave Motion, 115, 103080 (2022) |
| [10] | AURIAULT, J. L., BOUTIN, C., and GEINDREAU, C. Homogenization of Coupled Phenomena in Heterogeneous Media, ISTE Ltd and John Wiley & Sons, London and Hoboken, NJ, 1–473 (2009) |
| [11] | ARENAS, J. P., PARRA, C. C., REBOLLEDO, J., and VENEGAS, R. Granular pumice stone: a natural double-porosity sound-absorbing material. Buildings, 15(4), 557 (2025) |
| [12] | ZIELI?SKI, T. G., DAUCHEZ, N., BOUTIN, T., LETURIA, M., WILKINSON, A., CHEVILLOTTE, F., BéCOT, F. X., and VENEGAS, R. Taking advantage of a 3D printing imperfection for the development of sound-absorbing materials. Applied Acoustics, 197, 108941 (2022) |
| [13] | ALLARD, J. F. and ATALLA, N. Propagation of Sound in Porous Media: Modeling Sound Absorbing Materials, 2nd ed., John Wiley & Sons, Hoboken, NJ, 1–358 (2009) |
| [14] | AURIAULT, J. L., BORNE, L., and CHAMBON, R. Dynamics of porous saturated media, checking of the generalized law of Darcy. The Journal of the Acoustical Society of America, 77(5), 1641–1650 (1985) |
| [15] | JOHNSON, D. L., KOPLIK, J., and DASHEN, R. Theory of dynamic permeability and tortuosity in fluid-saturated porous media. Journal of Fluid Mechanics, 176, 379–402 (1987) |
| [16] | LAFARGE, D., LEMARINIER, P., ALLARD, J. F., and TARNOW, V. Dynamic compressibility of air in porous structures at audible frequencies. The Journal of the Acoustical Society of America, 102(4), 1995–2006 (1997) |
| [17] | ZIELI?SKI, T. G., VENEGAS, R., PERROT, C., ?ERVENKA, M., CHEVILLOTTE, F., and ATTENBOROUGH, K. Benchmarks for microstructure-based modelling of sound absorbing rigid-frame porous media. Journal of Sound and Vibration, 483, 115441 (2020) |
| [18] | UMNOVA, O., ATTENBOROUGH, K., and LI, K. M. Cell model calculations of dynamic drag parameters in packings of spheres. The Journal of the Acoustical Society of America, 107(6), 3113–3119 (2000) |
| [19] | UMNOVA, O., TSIKLAURI, D., and VENEGAS, R. Effect of boundary slip on the acoustical properties of microfibrous materials. The Journal of the Acoustical Society of America, 126(4), 1850–1861 (2009) |
| [20] | TRINH, V. H., LANGLOIS, V., GUILLEMINOT, J., PERROT, C., KHIDAS, Y., and PITOIS, O. Tuning membrane content of sound absorbing cellular foams: fabrication, experimental evidence and multiscale numerical simulations. Materials and Design, 162, 345–361 (2019) |
| [21] | STINSON, M. R. The propagation of plane sound waves in narrow and wide circular tubes, and generalization to uniform tubes of arbitrary cross-sectional shape. The Journal of the Acoustical Society of America, 89(2), 550–558 (1991) |
| [22] | AURIAULT, J. L. and BOUTIN, C. Long wavelength inner-resonance cut-off frequencies in elastic composite materials. International Journal of Solids and Structures, 49(23-24), 3269–3281 (2012) |
| [23] | BOUTIN, C. Acoustics of porous media with inner resonators. The Journal of the Acoustical Society of America, 134(6), 4717–4729 (2013) |
| [24] | VENEGAS, R., NúNEZ, G., BOUTIN, C., UMNOVA, O., and ZHANG, Q. Acoustic wave propagation in permeable lossy metamaterials. Physics of Fluids, 34(1), 017117 (2022) |
| [25] | ZHANG, J., HU, B., and WANG, S. Review and perspective on acoustic metamaterials: from fundamentals to applications. Applied Physics Letters, 123(1), 010502 (2023) |
| [26] | WANG, K., ZHOU, J., TAN, D., LI, Z., LIN, Q., and XU, D. A brief review of metamaterials for opening low-frequency band gaps. Applied Mathematics and Mechanics (English Edition), 43, 1125–1144 (2022) https://doi.org/10.1007/s10483-022-2870-9 |
| [27] | LIU, J., LI, J., and WU, Y. Bandgap adjustment of a sandwich-like acoustic metamaterial plate with a frequency-displacement feedback control method. Applied Mathematics and Mechanics (English Edition), 45, 1807–1820 (2024) https://doi.org/10.1007/s10483-024-3167-8 |
| [28] | HAN, D., JIA, Q., GAO, Y., JIN, Q., FANG, X., WEN, J., and YU, D. Local resonance metamaterial-based integrated design for suppressing longitudinal and transverse waves in fluid-conveying pipes. Applied Mathematics and Mechanics (English Edition), 45, 1821–1840 (2024) https://doi.org/10.1007/s10483-024-3166-8 |
| [29] | DONG, X., WANG, S., WANG, A., WANG, L., ZHANG, Z., TIE, Y., LIN, Q., and SUN, Y. Low-frequency bandgap and vibration suppression mechanism of a novel square hierarchical honeycomb metamaterial. Applied Mathematics and Mechanics (English Edition), 45, 1841–1856 (2024) https://doi.org/10.1007/s10483-024-3168-7 |
| [30] | WANG, S., WANG, A., WU, Y., LI, X., SUN, Y., ZHANG, Z., DING, Q., AYALEW, G. D., MA, Y., and LIN, Q. Ultra-wide band gap and wave attenuation mechanism of a novel star-shaped chiral metamaterial. Applied Mathematics and Mechanics (English Edition), 45, 1261–1278 (2024) https://doi.org/10.1007/s10483-024-3156-8 |
| [31] | JIA, Q., YU, D., HAN, D., and WEN, J. Lightweight multifunctional metamaterial with low-frequency vibroacoustic reduction and load-bearing performances. Applied Mathematics and Mechanics (English Edition), 46, 403–422 (2025) https://doi.org/10.1007/s10483-025-3231-6 |
| [32] | LIU, Z., ZHANG, X., MAO, Y., ZHU, Y. Y., YANG, Z., CHAN, C. T., and SHENG, P. Locally resonant sonic materials. Science, 289(5485), 1734–1736 (2000) |
| [33] | FANG, N., XI, D., XU, J., AMBATI, M., SRITURAVANICH, W., SUN, C., and ZHANG, X. Ultrasonic metamaterials with negative modulus. Nature Materials, 5, 452–456 (2006) |
| [34] | KRYNKIN, A., UMNOVA, O., BOON CHONG, A. Y., TAHERZADEH, S., and ATTENBOROUGH, K. Predictions and measurements of sound transmission through a periodic array of elastic shells in air. The Journal of the Acoustical Society of America, 128(6), 3496–3506 (2010) |
| [35] | YANG, Z., MEI, J., YANG, M., CHAN, N. H., and SHENG, P. Membrane-type acoustic metamaterial with negative dynamic mass. Physical Review Letters, 101(20), 204301 (2008) |
| [36] | GAULON, C., PIERRE, J., DEREC, C., JAOUEN, L., BéCOT, F. X., CHEVILLOTTE, F., ELIAS, F., DRENCKHAN, W., and LEROY, V. Acoustic absorption of solid foams with thin membranes. Applied Physics Letters, 112(26), 261904 (2018) |
| [37] | BONGARD, F., LISSEK, H., and MOSIG, J. R. Acoustic transmission line metamaterial with negative/zero/positive refractive index. Physical Review B, 82(9), 094306 (2010) |
| [38] | SEO, Y. M., PARK, J. J., LEE, S. H., PARK, C. M., KIM, C. K., and LEE, S. H. Acoustic metamaterial exhibiting four different sign combinations of density and modulus. Journal of Applied Physics, 111(2), 023504 (2012) |
| [39] | QUE, W., YANG, X., and ZHANG, W. Tunable low frequency band gaps and sound transmission loss of a lever-type metamaterial plate. Applied Mathematics and Mechanics (English Edition), 43, 1145–1158 (2022) https://doi.org/10.1007/s10483-022-2890-9 |
| [40] | ARENAS, J. P., MARIN, V., and VENEGAS, R. Membrane sound absorber with a granular activated carbon infill. Applied Acoustics, 202, 109180 (2023) |
| [41] | ZHAO, H., WANG, Y., YU, D., YANG, H., ZHONG, J., WU, F., and WEN, J. A double porosity material for low frequency sound absorption. Composite Structures, 239, 111978 (2020) |
| [42] | ZHANG, W., LIU, X., and XIN, F. Normal incidence sound absorption of an acoustic labyrinthine metal-fibers-based porous metamaterial at high temperature. International Journal of Mechanical Sciences, 237, 107821 (2023) |
| [43] | LI, Y., YAN, J., and PENG, Y. Multiscale porous with coiled-up channel for low-frequency broadband sound absorption. International Journal of Mechanical Sciences, 232, 107622 (2022) |
| [44] | GAO, N., TANG, L., DENG, J., LU, K., HOU, H., and CHEN, K. Design, fabrication and sound absorption test of composite porous metamaterial with embedding I-plates into porous polyurethane sponge. Applied Acoustics, 175, 107845 (2021) |
| [45] | WANG, S., XIAO, Y., GU, J., HU, C., ZHANG, H., and WEN, J. Double-panel metastructure lined with porous material for broadband low-frequency sound insulation. Applied Acoustics, 207, 109332 (2023) |
/
| 〈 |
|
〉 |