Perforation Enhances Sound Insulation in Plate Lattice Metamaterials

Ventilated sound-insulating materials are desirable, yet porosity often weakens insulation by creating sound-leakage pathways. Here, we demonstrate a face-centered cubic (FCC) plate-lattice implementation in which perforation geometry is engineered to regulate the acoustic-airflow trade-off. Two symmetry-preserving perforation strategies, positioned at either the edge-node regions or the centers of the plate facets, are systematically investigated by varying perforation diameter and relative density. Experimentally validated, counterintuitively, several perforated lattices outperform their non-perforated FCC counterparts over multiple frequency bands. Further, a best-performing lattice achieves a peak transmission loss of up to 50 dB at around 2300 Hz, 19 dB higher than its closed-cell counterpart, while maintaining a broad 1700 Hz bandwidth with transmission loss above 20 dB and retaining measurable airflow of 5% relative to an unobstructed channel. Finite element pressure, velocity, and stress-field analyses are consistent with a Helmholtz-like pore-cavity response and higher-frequency cavity-mediated interactions contributing to the enhanced attenuation beyond the mass-stiffness-controlled response of the baseline closed-cell lattice. These acoustic contributions are further represented by a reduced-order transfer matrix model, providing an analytical framework. Overall, this work demonstrates an architecture-specific strategy for using perforation geometry to regulate sound insulation and airflow within FCC plate lattice metamaterials.

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Publication Details

Journal
Small
Published
2026-09-15
DOI
https://doi.org/10.1002/smll.75714
Primary Topic
Acoustic Wave Phenomena Research
Type
article
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article

Perforation Enhances Sound Insulation in Plate Lattice Metamaterials

Xinwei Li, Zhendong Li, Jing Tan, Chenxu Liu
Small
Acoustic Wave Phenomena Research
article

Perforation Enhances Sound Insulation in Plate Lattice Metamaterials

Xinwei Li, Zhendong Li, Jing Tan, Chenxu Liu
article en

Abstract

Ventilated sound-insulating materials are desirable, yet porosity often weakens insulation by creating sound-leakage pathways. Here, we demonstrate a face-centered cubic (FCC) plate-lattice implementation in which perforation geometry is engineered to regulate the acoustic-airflow trade-off. Two symmetry-preserving perforation strategies, positioned at either the edge-node regions or the centers of the plate facets, are systematically investigated by varying perforation diameter and relative density. Experimentally validated, counterintuitively, several perforated lattices outperform their non-perforated FCC counterparts over multiple frequency bands. Further, a best-performing lattice achieves a peak transmission loss of up to 50 dB at around 2300 Hz, 19 dB higher than its closed-cell counterpart, while maintaining a broad 1700 Hz bandwidth with transmission loss above 20 dB and retaining measurable airflow of 5% relative to an unobstructed channel. Finite element pressure, velocity, and stress-field analyses are consistent with a Helmholtz-like pore-cavity response and higher-frequency cavity-mediated interactions contributing to the enhanced attenuation beyond the mass-stiffness-controlled response of the baseline closed-cell lattice. These acoustic contributions are further represented by a reduced-order transfer matrix model, providing an analytical framework. Overall, this work demonstrates an architecture-specific strategy for using perforation geometry to regulate sound insulation and airflow within FCC plate lattice metamaterials.

Small
Central South University (CN), National University of Singapore (SG), Newcastle University Singapore (SG), Newcastle University (GB), Xi'an Jiaotong University (CN)
Sustainable cities and communities
Openalex Percentile: Top 20%
Acoustic Wave Phenomena Research
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Perforation Enhances Sound Insulation in Plate Lattice Metamaterials — Xinwei Li, Zhendong Li, et al. · Small (2026) | TGRS Research Map | TGRS