Design of metamaterial with compression-torsion-translation coupling mechanism for low-frequency vibration suppression

Low-frequency vibration suppression remains a pressing challenge in the field of vibration control via metamaterials design. Compression–torsion coupling metamaterials offer notable advantages for low-frequency vibration suppression owing to their distinctive physical properties. However, most compression–torsion coupled metamaterials incorporate coupling of compressional and torsional vibrations, which provides limited low-frequency suppression effectiveness. In order to address the aforementioned problem, this paper proposes a novel compression-torsion-translation coupling metamaterial structure (C-T-TCMS). By incorporating translational vibration into the structural design, a coupling effect among compression, torsion, and translation is achieved. The three-coupling design introduces a new low-frequency vibration attenuation pathway, effectively reducing the transmission efficiency of compression vibrations and thereby enhancing low-frequency isolation performance. In addition, analysis of the vibration transmission characteristics revealed a low-frequency vibration attenuation band (L-FVAB) outside the bandgap range, which further lowered the structure’s initial vibration suppression frequency. Both simulations and experiments demonstrated the low-frequency broadband vibration suppression performance of the proposed compression-torsion-translation coupled metamaterial structure. This study provides a perspective on the design of metamaterial structures for low-frequency vibration suppression based on the compression–torsion coupling mechanism.

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Publication Details

Journal
Journal of Vibration and Control
Published
2026-08-26
DOI
https://doi.org/10.1177/10775463261481488
Primary Topic
Acoustic Wave Phenomena Research
Type
article
Field-Weighted Citation Impact
0.00

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Design of metamaterial with compression-torsion-translation coupling mechanism for low-frequency vibration suppression

Xiang Zhu, Tao Zhang, Haihua Deng, Yutong Wang et al.
Journal of Vibration and Control
Acoustic Wave Phenomena Research
article

Design of metamaterial with compression-torsion-translation coupling mechanism for low-frequency vibration suppression

Xiang Zhu, Tao Zhang, Haihua Deng, Yutong Wang, Lin Zhang
article en

Abstract

Low-frequency vibration suppression remains a pressing challenge in the field of vibration control via metamaterials design. Compression–torsion coupling metamaterials offer notable advantages for low-frequency vibration suppression owing to their distinctive physical properties. However, most compression–torsion coupled metamaterials incorporate coupling of compressional and torsional vibrations, which provides limited low-frequency suppression effectiveness. In order to address the aforementioned problem, this paper proposes a novel compression-torsion-translation coupling metamaterial structure (C-T-TCMS). By incorporating translational vibration into the structural design, a coupling effect among compression, torsion, and translation is achieved. The three-coupling design introduces a new low-frequency vibration attenuation pathway, effectively reducing the transmission efficiency of compression vibrations and thereby enhancing low-frequency isolation performance. In addition, analysis of the vibration transmission characteristics revealed a low-frequency vibration attenuation band (L-FVAB) outside the bandgap range, which further lowered the structure’s initial vibration suppression frequency. Both simulations and experiments demonstrated the low-frequency broadband vibration suppression performance of the proposed compression-torsion-translation coupled metamaterial structure. This study provides a perspective on the design of metamaterial structures for low-frequency vibration suppression based on the compression–torsion coupling mechanism.

Journal of Vibration and Control
Huazhong University of Science and Technology (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 19%
Acoustic Wave Phenomena Research
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