Tunable Low-Frequency Bandgaps in Foldable Metamaterials based on MRE: Review and Numerical Analysis

Active control of low-frequency bandgaps remains a key challenge in vibration engineering. In foldable metamaterials, bandgap tuning is usually realized through geometric changes such as folding angle adjustment, which is slow and discrete. To overcome this limitation, we propose to replace the conventional springs in the resonators with magnetorheological elastomers (MREs), enabling continuous and fast bandgap control via external magnetic fields. A numerical study using the finite element method (FEM) is conducted to examine the dispersion relations and vibration transmission of the proposed structure. The results show that magnetic field strength and iron particle content can effectively shift the bandgap position and width. Supercell transmission analysis confirms that the theoretical bandgap predictions match well with the actual vibration attenuation. A hybrid supercell design further broadens the effective attenuation range. Besides, the work also offers a systematic background review of foldable metamaterials and active approaches, which provides a framework for designing actively tunable metamaterials for low-frequency vibration attenuation in applications such as precision instrument isolation and spacecraft micro-vibration control.

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Publication Details

Journal
Nano Micro Mechanics Review
Published
2026-09-11
DOI
https://doi.org/10.1142/s3082805826500093
Primary Topic
Acoustic Wave Phenomena Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Tunable Low-Frequency Bandgaps in Foldable Metamaterials based on MRE: Review and Numerical Analysis

Y.Y. Lee, C.W. Lim, Tian Wang, Andrew Y. T. Leung et al.
Nano Micro Mechanics Review
Acoustic Wave Phenomena Research
article

Tunable Low-Frequency Bandgaps in Foldable Metamaterials based on MRE: Review and Numerical Analysis

Y.Y. Lee, C.W. Lim, Tian Wang, Andrew Y. T. Leung, Zhiwen Zhu
article en

Abstract

Active control of low-frequency bandgaps remains a key challenge in vibration engineering. In foldable metamaterials, bandgap tuning is usually realized through geometric changes such as folding angle adjustment, which is slow and discrete. To overcome this limitation, we propose to replace the conventional springs in the resonators with magnetorheological elastomers (MREs), enabling continuous and fast bandgap control via external magnetic fields. A numerical study using the finite element method (FEM) is conducted to examine the dispersion relations and vibration transmission of the proposed structure. The results show that magnetic field strength and iron particle content can effectively shift the bandgap position and width. Supercell transmission analysis confirms that the theoretical bandgap predictions match well with the actual vibration attenuation. A hybrid supercell design further broadens the effective attenuation range. Besides, the work also offers a systematic background review of foldable metamaterials and active approaches, which provides a framework for designing actively tunable metamaterials for low-frequency vibration attenuation in applications such as precision instrument isolation and spacecraft micro-vibration control.

Nano Micro Mechanics Review
Tianjin University of Science and Technology (CN), Tianjin University (CN), City University of Hong Kong (HK), Zhejiang University of Science and Technology (CN), Zhejiang University (CN), University of St. Francis (US)
National Natural Science Foundation of China, Research Grants Council, University Grants Committee
Openalex Percentile: Top 20%
Acoustic Wave Phenomena Research
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