Broadband sound-absorbing and mechanically robust plate lattices with manufacturing-driven architecture

Modern engineering demands structural materials that not only withstand mechanical loads but also address additional functional requirements, such as noise control, driving the need for innovative multifunctional designs. Plate lattices, known for their mechanical robustness, provide a promising foundation for achieving multifunctionality. In a twist, the inherent manufacturing need for perforations in plate lattices, which are closed-cell structures, presents a previously untapped opportunity to achieve substantial gains in acoustic performance. These perforations effectively transform plate lattices into multi-layered Helmholtz resonators. Using high-fidelity acoustical impedance solutions that we have developed, we then present an optimised plate lattice configuration that achieves local absorption coefficients of 1 and an average coefficient of 0.73 across a broad frequency range from 1000 to 6400 Hz. The structure also maintains good elastic isotropy while demonstrating excellent large deformation recovery, retaining 78% of ultimate stress and 90% of sound absorption after cycle testing at 20% strain. Further, it has shown the potential of impact mitigation with an inertial effect attenuation rate of 423.33 s-1 under a drop hammer impact carrying 62 J of energy and 2.82 m/s of contact velocity. Overall, our study highlights a pathway for achieving multifunctional performance through manufacturing-informed design and genetic-algorithm-based parametric optimisation.

Authors

Institutions

Publication Details

Journal
Virtual and Physical Prototyping
Published
2026-09-21
DOI
https://doi.org/10.1080/17452759.2026.2732406
Primary Topic
Acoustic Wave Phenomena Research
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Broadband sound-absorbing and mechanically robust plate lattices with manufacturing-driven architecture

Jun Wei Chua, N Zhang, Haoran Pei, Xinxin Wang et al.
Virtual and Physical Prototyping
Acoustic Wave Phenomena Research
article

Broadband sound-absorbing and mechanically robust plate lattices with manufacturing-driven architecture

Jun Wei Chua, N Zhang, Haoran Pei, Xinxin Wang, Xinwei Li, Chuanliang Zhang, Xiaogeng Tian, Cheng Qian
article en

Abstract

Modern engineering demands structural materials that not only withstand mechanical loads but also address additional functional requirements, such as noise control, driving the need for innovative multifunctional designs. Plate lattices, known for their mechanical robustness, provide a promising foundation for achieving multifunctionality. In a twist, the inherent manufacturing need for perforations in plate lattices, which are closed-cell structures, presents a previously untapped opportunity to achieve substantial gains in acoustic performance. These perforations effectively transform plate lattices into multi-layered Helmholtz resonators. Using high-fidelity acoustical impedance solutions that we have developed, we then present an optimised plate lattice configuration that achieves local absorption coefficients of 1 and an average coefficient of 0.73 across a broad frequency range from 1000 to 6400 Hz. The structure also maintains good elastic isotropy while demonstrating excellent large deformation recovery, retaining 78% of ultimate stress and 90% of sound absorption after cycle testing at 20% strain. Further, it has shown the potential of impact mitigation with an inertial effect attenuation rate of 423.33 s-1 under a drop hammer impact carrying 62 J of energy and 2.82 m/s of contact velocity. Overall, our study highlights a pathway for achieving multifunctional performance through manufacturing-informed design and genetic-algorithm-based parametric optimisation.

Virtual and Physical PrototypingVol. 21(1)
National University of Singapore (SG), Chinese Academy of Sciences (CN), Newcastle University Singapore (SG), Xi'an Jiaotong University (CN)
Sustainable cities and communities
Openalex Percentile: Top 48%
Acoustic Wave Phenomena Research
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.