Research Article | | Peer-Reviewed

Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber

Received: 23 August 2026     Accepted: 4 September 2026     Published: 20 September 2026
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Abstract

Sonic Crystal Noise Barriers (SCNBs) exploit Bragg scattering in periodic scatterer arrays to attenuate road traffic noise without the visual and aerodynamic penalties of solid walls. Despite growing computational interest, a persistent gap remains between idealised simulation predictions and measured laboratory performance, largely because viscothermal dissipation and diffraction losses are routinely omitted from numerical models. This study presents a systematic, two-phase hybrid methodology to address this gap: first, forty-four Finite Element Method (FEM) configurations were evaluated in COMSOL Multiphysics by varying filling fraction (ff = 0.1-0.5), cylinder diameter (d = 0.02-0.1 m), and lattice constant (α) to identify parameter-dependent trends in A-weighted transmission loss (TLa). Second, fifteen representative prototype configurations were fabricated from acrylic and tested inside an anechoic/reverberation acoustic chamber to validate the computational model across the full 50-4000 Hz range. Simulations predicted a peak TLa of 45.8 dB for ff = 0.3, d = 0.07 m, α = 0.113 m in a 2 × 4 array, while the highest experimentally measured TLa was 10.1 dB for ff = 0.5, d = 0.07 m, α = 0.088 m in a 2 × 6 array. Although quantitative agreement was not achieved, the rank ordering of configurations by TLa was consistent between simulation and experiment across all five filling fractions, confirming the predictive reliability of the computational model for comparative design screening. The observed over-prediction is attributed primarily to viscothermal energy losses, diffraction effects, and material absorption not captured in the idealised 2D lossless model, which reveals that cylinder diameter and lattice constant are the primary drivers of simulated TLa, whereas fill fraction dominates the experimental TLa response, with a 2-row depth identified as the optimal configuration depth for mid-range diameters. These findings provide a validated, data-driven design framework for cost-effective SCNB development and clarify the modelling corrections required to improve quantitative fidelity.

Published in American Journal of Physics and Applications (Volume 14, Issue 4)
DOI 10.11648/j.ajpa.20261404.11
Page(s) 50-67
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2026. Published by Science Publishing Group

Keywords

Sonic Crystal, Noise Barrier, Transmission Loss, Filling Fraction, Finite Element Method, Acoustic Chamber, COMSOL Multiphysics, Viscothermal Effect

References
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[6] F. Koussa, J. Defrance, P. Jean, and P. Blanc-Benon, “Acoustical efficiency of a sonic crystal assisted noise barrier,” Acta Acust. United Acust., vol. 99, no. 3, pp. 399–409, 2013.
[7] L. Onrubia-Fontangordo, J. M. Bravo Plana-Sala, S. Castiñeira-Ibáñez, and J. V. Sánchez-Pérez, “Design and validation of a comprehensive model to characterize sonic crystals acoustic screens in the low frequency regime,” Appl. Acoust., vol. 224, p. 110102, 2024.
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[13] M. Molérón, M. Serra-Garcia, and C. Daraio, “Visco-thermal effects in acoustic metamaterials: from total transmission to total reflection and high absorption,” New J. Phys., vol. 18, no. 3, p. 033003, 2016.
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Cite This Article
  • APA Style

    Lam, K., Wat, C., Ahmed, S. B., Tang, C., Ruan, H., et al. (2026). Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber. American Journal of Physics and Applications, 14(4), 50-67. https://doi.org/10.11648/j.ajpa.20261404.11

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    ACS Style

    Lam, K.; Wat, C.; Ahmed, S. B.; Tang, C.; Ruan, H., et al. Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber. Am. J. Phys. Appl. 2026, 14(4), 50-67. doi: 10.11648/j.ajpa.20261404.11

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    AMA Style

    Lam K, Wat C, Ahmed SB, Tang C, Ruan H, et al. Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber. Am J Phys Appl. 2026;14(4):50-67. doi: 10.11648/j.ajpa.20261404.11

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  • @article{10.11648/j.ajpa.20261404.11,
      author = {King-cheong Lam and Chin-to Wat and Syed Bilal Ahmed and Chak-yin Tang and Hai-hui Ruan and Chi-ho Wong and Kia Ho-yin Tsang and Ricky Kai-long Mak and Wai-keung Anthony Loh},
      title = {Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber},
      journal = {American Journal of Physics and Applications},
      volume = {14},
      number = {4},
      pages = {50-67},
      doi = {10.11648/j.ajpa.20261404.11},
      url = {https://doi.org/10.11648/j.ajpa.20261404.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajpa.20261404.11},
      abstract = {Sonic Crystal Noise Barriers (SCNBs) exploit Bragg scattering in periodic scatterer arrays to attenuate road traffic noise without the visual and aerodynamic penalties of solid walls. Despite growing computational interest, a persistent gap remains between idealised simulation predictions and measured laboratory performance, largely because viscothermal dissipation and diffraction losses are routinely omitted from numerical models. This study presents a systematic, two-phase hybrid methodology to address this gap: first, forty-four Finite Element Method (FEM) configurations were evaluated in COMSOL Multiphysics by varying filling fraction (ff = 0.1-0.5), cylinder diameter (d = 0.02-0.1 m), and lattice constant (α) to identify parameter-dependent trends in A-weighted transmission loss (TLa). Second, fifteen representative prototype configurations were fabricated from acrylic and tested inside an anechoic/reverberation acoustic chamber to validate the computational model across the full 50-4000 Hz range. Simulations predicted a peak TLa of 45.8 dB for ff = 0.3, d = 0.07 m, α = 0.113 m in a 2 × 4 array, while the highest experimentally measured TLa was 10.1 dB for ff = 0.5, d = 0.07 m, α = 0.088 m in a 2 × 6 array. Although quantitative agreement was not achieved, the rank ordering of configurations by TLa was consistent between simulation and experiment across all five filling fractions, confirming the predictive reliability of the computational model for comparative design screening. The observed over-prediction is attributed primarily to viscothermal energy losses, diffraction effects, and material absorption not captured in the idealised 2D lossless model, which reveals that cylinder diameter and lattice constant are the primary drivers of simulated TLa, whereas fill fraction dominates the experimental TLa response, with a 2-row depth identified as the optimal configuration depth for mid-range diameters. These findings provide a validated, data-driven design framework for cost-effective SCNB development and clarify the modelling corrections required to improve quantitative fidelity.},
     year = {2026}
    }
    

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  • TY  - JOUR
    T1  - Development of Sonic Crystal Noise Barriers with Simulations and Experimental Validations in Acoustic Chamber
    AU  - King-cheong Lam
    AU  - Chin-to Wat
    AU  - Syed Bilal Ahmed
    AU  - Chak-yin Tang
    AU  - Hai-hui Ruan
    AU  - Chi-ho Wong
    AU  - Kia Ho-yin Tsang
    AU  - Ricky Kai-long Mak
    AU  - Wai-keung Anthony Loh
    Y1  - 2026/09/20
    PY  - 2026
    N1  - https://doi.org/10.11648/j.ajpa.20261404.11
    DO  - 10.11648/j.ajpa.20261404.11
    T2  - American Journal of Physics and Applications
    JF  - American Journal of Physics and Applications
    JO  - American Journal of Physics and Applications
    SP  - 50
    EP  - 67
    PB  - Science Publishing Group
    SN  - 2330-4308
    UR  - https://doi.org/10.11648/j.ajpa.20261404.11
    AB  - Sonic Crystal Noise Barriers (SCNBs) exploit Bragg scattering in periodic scatterer arrays to attenuate road traffic noise without the visual and aerodynamic penalties of solid walls. Despite growing computational interest, a persistent gap remains between idealised simulation predictions and measured laboratory performance, largely because viscothermal dissipation and diffraction losses are routinely omitted from numerical models. This study presents a systematic, two-phase hybrid methodology to address this gap: first, forty-four Finite Element Method (FEM) configurations were evaluated in COMSOL Multiphysics by varying filling fraction (ff = 0.1-0.5), cylinder diameter (d = 0.02-0.1 m), and lattice constant (α) to identify parameter-dependent trends in A-weighted transmission loss (TLa). Second, fifteen representative prototype configurations were fabricated from acrylic and tested inside an anechoic/reverberation acoustic chamber to validate the computational model across the full 50-4000 Hz range. Simulations predicted a peak TLa of 45.8 dB for ff = 0.3, d = 0.07 m, α = 0.113 m in a 2 × 4 array, while the highest experimentally measured TLa was 10.1 dB for ff = 0.5, d = 0.07 m, α = 0.088 m in a 2 × 6 array. Although quantitative agreement was not achieved, the rank ordering of configurations by TLa was consistent between simulation and experiment across all five filling fractions, confirming the predictive reliability of the computational model for comparative design screening. The observed over-prediction is attributed primarily to viscothermal energy losses, diffraction effects, and material absorption not captured in the idealised 2D lossless model, which reveals that cylinder diameter and lattice constant are the primary drivers of simulated TLa, whereas fill fraction dominates the experimental TLa response, with a 2-row depth identified as the optimal configuration depth for mid-range diameters. These findings provide a validated, data-driven design framework for cost-effective SCNB development and clarify the modelling corrections required to improve quantitative fidelity.
    VL  - 14
    IS  - 4
    ER  - 

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