Next Article in Journal
Effect of GFRP and CFPR Hybrid Confinement on the Compressive Performance of Concrete
Previous Article in Journal
Rehabilitation and Strengthening of Damaged Reinforced Concrete Beams Using Carbon Fiber-Reinforced Polymer Laminates and High-Strength Concrete Integrating Recycled Tire Steel Fiber
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
This is an early access version, the complete PDF, HTML, and XML versions will be available soon.
Article

Optimizing Controlled-Resonance Acoustic Metamaterials with Perforated Plexiglass Disks, Honeycomb Structures, and Embedded Metallic Masses

by
Giuseppe Ciaburro
1,*,
Gino Iannace
2 and
Virginia Puyana Romero
3
1
Faculty of Engineering and Informatics, Department of Engineering, Pegaso University, 80143 Naples, Italy
2
Department of Architecture and Industrial Design, University of Campania, Luigi Vanvitelli, 81031 Aversa, Italy
3
Faculty of Engineering and Applied Sciences, Department of Sound and Acoustic Engineering, University of Las Américas, Quito 170125, Ecuador
*
Author to whom correspondence should be addressed.
Fibers 2025, 13(2), 11; https://doi.org/10.3390/fib13020011
Submission received: 20 November 2024 / Revised: 10 January 2025 / Accepted: 15 January 2025 / Published: 22 January 2025

Abstract

Acoustic metamaterials offer new opportunities for controlling sound waves through engineered material configurations at the sub-wavelength scale. In this research, we present the optimization of a resonance-controlled acoustic metamaterial based on a sandwich structure composed of perforated plexiglass disks, honeycomb structures, and added metal masses. The innovative approach consists of integrating perforated plexiglass disks interspersed with honeycomb structures, which act as multiple and complex Helmholtz resonators, and adding metal masses to introduce resonances at specific frequencies. The metamaterial’s acoustic properties were experimentally characterized using an impedance tube (Kundt tube), allowing the measurement of the Sound Absorption Coefficient (SAC) over an expansive frequency selection. The results demonstrate a substantial enhancement in sound absorption at the target frequencies, demonstrating the effectiveness of the introduced resonances. Numerical simulations using an Artificial Neural Network (ANN) model in MATLAB environment were used to analyze the distribution of resonances and optimize the structural configuration. To effectively evaluate the acoustic properties of the metamaterial, various configurations were analyzed using perforated plexiglass disks combined with different layers of honeycombs arranged in a sandwich structure with a thickness ranging from 41 to 45 mm. A comparison of these configurations revealed a notable increase in the Sound Absorption Coefficient (SAC) when employing three layers of perforated plexiglass disks and adding masses to the first disk (about 14%). This study highlights the potential of resonance-controlled metamaterials for advanced applications in noise control and acoustic engineering.
Keywords: acoustic metamaterials; controlled resonance; perforated plexiglass discs; honeycomb structures; sound absorption coefficient acoustic metamaterials; controlled resonance; perforated plexiglass discs; honeycomb structures; sound absorption coefficient

Share and Cite

MDPI and ACS Style

Ciaburro, G.; Iannace, G.; Romero, V.P. Optimizing Controlled-Resonance Acoustic Metamaterials with Perforated Plexiglass Disks, Honeycomb Structures, and Embedded Metallic Masses. Fibers 2025, 13, 11. https://doi.org/10.3390/fib13020011

AMA Style

Ciaburro G, Iannace G, Romero VP. Optimizing Controlled-Resonance Acoustic Metamaterials with Perforated Plexiglass Disks, Honeycomb Structures, and Embedded Metallic Masses. Fibers. 2025; 13(2):11. https://doi.org/10.3390/fib13020011

Chicago/Turabian Style

Ciaburro, Giuseppe, Gino Iannace, and Virginia Puyana Romero. 2025. "Optimizing Controlled-Resonance Acoustic Metamaterials with Perforated Plexiglass Disks, Honeycomb Structures, and Embedded Metallic Masses" Fibers 13, no. 2: 11. https://doi.org/10.3390/fib13020011

APA Style

Ciaburro, G., Iannace, G., & Romero, V. P. (2025). Optimizing Controlled-Resonance Acoustic Metamaterials with Perforated Plexiglass Disks, Honeycomb Structures, and Embedded Metallic Masses. Fibers, 13(2), 11. https://doi.org/10.3390/fib13020011

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop