Numerical Simulation and Analysis of the Acoustic Properties of Bimodal and Modulated Macroporous Structures
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Date
2023-11-20
Journal Title
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Publisher
Applied Sciences (MDPI)
Abstract
In recent decades, cellular metallic materials have increasingly been used for control
of reverberation and cutback. These materials offer a unique combination of expanded pores,
high specific surfaces, improved structural performance, low weight, corrosion resistance at high
temperatures, and a fixed/rigid pore network (i.e., at the boundaries, porosity does not change).
This study examines the ability of sphere-packing models combined with numerical modelling
and simulations to predict the acoustic properties of bimodal and modulated bottleneck-shaped
macroporous structures that can realistically be achieved through liquid melts infiltration casting
technique. The simulations show that porosity, openings, pore sizes and permeability of the material
have significant effects on acoustics, and the predictions are consistent with experimental data
substantiated in the literature. The modelling suggests that the creation of bimodal structures
increases the capacity of the interstitial pores and pore contacts. The result is improved sound
absorption properties and spectra, characterised by a pore volume fraction of 0.73 and a mean pore
size to mean pore opening ratio of 4.8 for the 50% volume bimodal structure created at a 10 m
capillary radius. The importance of how pore structure-related parameters and existing fluid flow
regimes can modulate the sound absorption performance of macroporous structures was revealed by
numerical simulations of the sound absorption spectra for dual-porosity and dilated macroporous
structures working from high-resolution tomography datasets. Sound absorption properties were
optimised for structures having pore volume fractions between 0.68 and 0.76, maintaining the mean
pore size to mean pore opening ratios between 4.0 and 6.0. Using this approach, enhanced and selfsupporting
macroporous structures may be designed and fabricated for efficient sound absorption in
specific applications.
Description
Keywords
Microporous Structures, Sound Absorption, Modelling and Simulation
Citation
Otaru, A.J.; Adeniyi, O.D.; Bori, I.; Olugboji, O.A.; Odigure, J.O. Numerical Simulation and Analysis of the Acoustic Properties of Bimodal and Modulated Macroporous Structures. Appl. Sci. 2023, 13, 12518. https://doi.org/10.3390/ app132212518