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Article

A Novel Multi-Resonator Polygonal Honeycomb Origami Metamaterial for Wave Transmission and Impact Mitigation

1
National Engineering Research Center of Biomaterials, Nanjing Forestry University, Nanjing 210037, China
2
School of Civil Engineering, Guangzhou City University of Technology, Guangzhou 510800, China
*
Author to whom correspondence should be addressed.
Materials 2026, 19(15), 3232; https://doi.org/10.3390/ma19153232
Submission received: 1 April 2026 / Revised: 9 June 2026 / Accepted: 27 July 2026 / Published: 29 July 2026

Abstract

Origami structures are recognized for their exceptional deformability and programmability, serving as a promising platform for designing mechanical metamaterials. In this paper, a local-resonant polygonal honeycomb origami metamaterial (LR-OHS) is proposed to achieve low-frequency wave attenuation and impact mitigation. The bandgap (BG), transmission spectrum, and mode analysis are investigated in detail through numerical calculations and experimental validation. It is demonstrated that two complete BGs in the low-frequency range are found, and the underlying generation mechanism of these BGs is elucidated theoretically by establishing a mass-spring model. Subsequent research discusses the influence of three significant parameters on the two complete BGs within the region of interest, as well as the broadening of the low-frequency BGs through the merger of two narrow BGs induced by an increasing resonator radius. Furthermore, the impact resistance performance of LR-OHS is evaluated under impact pulses, demonstrating a 43.43% reduction in the peak reaction force compared to its non-resonator origami honeycomb metamaterial. Additionally, parametric analysis of the number of resonators identified an optimal configuration of eight resonators per unit cell, ensuring high performance while satisfying lightweight engineering requirements. This work establishes a design framework for origami-based metamaterials, offering a viable path toward high-performance structures for wave attenuation and impact mitigation.
Keywords: origami metamaterials; local resonance; bandgap; mass-spring model; impact mitigation origami metamaterials; local resonance; bandgap; mass-spring model; impact mitigation

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MDPI and ACS Style

Wei, B.; Jiang, T.; Shen, C.; Wei, L.; Xiao, D. A Novel Multi-Resonator Polygonal Honeycomb Origami Metamaterial for Wave Transmission and Impact Mitigation. Materials 2026, 19, 3232. https://doi.org/10.3390/ma19153232

AMA Style

Wei B, Jiang T, Shen C, Wei L, Xiao D. A Novel Multi-Resonator Polygonal Honeycomb Origami Metamaterial for Wave Transmission and Impact Mitigation. Materials. 2026; 19(15):3232. https://doi.org/10.3390/ma19153232

Chicago/Turabian Style

Wei, Boyi, Tengjiao Jiang, Chenyi Shen, Lingkai Wei, and Dongliang Xiao. 2026. "A Novel Multi-Resonator Polygonal Honeycomb Origami Metamaterial for Wave Transmission and Impact Mitigation" Materials 19, no. 15: 3232. https://doi.org/10.3390/ma19153232

APA Style

Wei, B., Jiang, T., Shen, C., Wei, L., & Xiao, D. (2026). A Novel Multi-Resonator Polygonal Honeycomb Origami Metamaterial for Wave Transmission and Impact Mitigation. Materials, 19(15), 3232. https://doi.org/10.3390/ma19153232

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