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September 29, 2025The International Journal of Acoustics and Vibration0 citationsOpen Access

Random Incidence Sound Absorption of Porous Materials With Periodic Holes of Decreasing Profile

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ZLZacharie LalyUniversité de SherbrookeRPRaymond PannetonUniversité de SherbrookeKVKévin VerdièreUniversité de Sherbrooke

Key Points

  • The study found sound absorption coefficients exceeding 0.99 under various conditions, indicating effective acoustic performance.
  • Analysis showed that periodic holes improve low-frequency sound absorption in porous materials, enhancing acoustic applications.
  • Higher airflow resistivity leads to lower sound absorption with increased incidence angles, suggesting design limitations.
  • Finite element simulations were utilized to measure sound absorption and surface impedance, emphasizing advanced material analysis.

Abstract

This study investigates the acoustic performance of porous materials incorporating embedded periodic holes with a decreasing profile. Finite element simulations are used to assess the sound absorption coefficients and surface impedance under both oblique and random incidence (diffuse field) conditions for materials with low and high airflow resistivity. Acoustic field analysis reveals that while low-resistive materials support plane wave propagation, higher resistivity induces pressure diffusion, disrupting wavefront uniformity. For incidence angles up to 45 deg the diffuse field sound absorption coefficient is higher than 0.99 from 250 Hz to 3000 Hz and presents a peak of 0.98 at 110 Hz. As the incidence angle increases, the acoustic velocity through the material decreases and tends to zero as the incidence angle approaches 90° and the surface impedance increases and consequently the absorption coefficient decreases. The introduction of periodic holes significantly improves low-frequency diffuse field sound absorption compared to traditional porous materials, demonstrating the potential of this design for real-life acoustic applications.

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Cite This Study

Laly et al. (2025) studied this question.

synapsesocial.com/papers/68da58dcc1728099cfd11303https://doi.org/10.20855/ijav.2025.30.32142
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Improvement of sound absorption of porous materials through periodic holes of sinusoidal decreasing profile2024
  2. 2Broadband sound absorption using porous structures with embedded acoustic black holes2026 · 1 citations
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  4. 4Scattering of acoustic waves through porous media in a continuous spectrum2026
  5. 5A sector-shaped acoustic metamaterial for broadband and wide-angle sound absorption2026