Nested star-shaped auxetic metamaterials for high-efficiency energy dissipation

Mechanical metamaterials exhibiting a negative Poisson’s ratio (NPR) have attracted broad interest due to their anomalous mechanical responses. Conventional star-shaped structures with auxetic effect often suffer from inefficient energy absorption and structural instability under continuous deformation. To address these limitations, we propose a nested star-shaped architecture that is formed by nesting a star-shaped unit and a concave unit. By systematically varying geometric parameters, we derive theoretical relationships that govern the structure’s Young’s modulus and Poisson’s ratio. Through quasi-static compression experiments and finite element simulations, our findings demonstrate that the nested star-shaped design yields a stronger NPR behavior than the conventional star-shaped geometry at the same relative density. Furthermore, the nested geometry promotes a more uniform stress distribution, ensuring a highly stable deformation mode during compression. This mechanical stability translates to high energy dissipation, increasing the absorption efficiency to 1.3∼2.0 times that of traditional star-shaped structures. This work introduces a robust design paradigm for NPR metamaterials, offering substantial promise for applications ranging from architectural damping to biomedical devices.

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Publication Details

Journal
International Journal of Engineering Science
Published
2026-09-12
DOI
https://doi.org/10.1016/j.ijengsci.2026.104674
Primary Topic
Cellular and Composite Structures
Type
article
Field-Weighted Citation Impact
0.00

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Nested star-shaped auxetic metamaterials for high-efficiency energy dissipation

Aijun Chen, Tongtong Liu, Dingguo Zhang, Ying Wu et al.
International Journal of Engineering Science
Cellular and Composite Structures
article

Nested star-shaped auxetic metamaterials for high-efficiency energy dissipation

Aijun Chen, Tongtong Liu, Dingguo Zhang, Ying Wu, Hao Wang, Xiang Li
article en

Abstract

Mechanical metamaterials exhibiting a negative Poisson’s ratio (NPR) have attracted broad interest due to their anomalous mechanical responses. Conventional star-shaped structures with auxetic effect often suffer from inefficient energy absorption and structural instability under continuous deformation. To address these limitations, we propose a nested star-shaped architecture that is formed by nesting a star-shaped unit and a concave unit. By systematically varying geometric parameters, we derive theoretical relationships that govern the structure’s Young’s modulus and Poisson’s ratio. Through quasi-static compression experiments and finite element simulations, our findings demonstrate that the nested star-shaped design yields a stronger NPR behavior than the conventional star-shaped geometry at the same relative density. Furthermore, the nested geometry promotes a more uniform stress distribution, ensuring a highly stable deformation mode during compression. This mechanical stability translates to high energy dissipation, increasing the absorption efficiency to 1.3∼2.0 times that of traditional star-shaped structures. This work introduces a robust design paradigm for NPR metamaterials, offering substantial promise for applications ranging from architectural damping to biomedical devices.

International Journal of Engineering ScienceVol. 230
Wuhan University of Technology (CN), Nanjing University of Science and Technology (CN), Wuhan University of Science and Technology (CN), Shandong Jianzhu University (CN)
Fundamental Research Funds for the Central Universities of Beijing University of Chemical Technology, National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 20%
Cellular and Composite Structures
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