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Title: Inertially amplified seismic metamaterial with an ultra-low-frequency bandgap
Authors: Zeng, Y
Cao, L
Wan, S
Guo, T
An, S 
Wang, YF
Du, QJ
Vincent, B
Wang, YS
Assouar, B
Issue Date: Aug-2022
Source: Applied physics letters, 22 Aug. 2022, v. 121, no. 8, 081701, p. 081701-1 - 081701-7
Abstract: In last two decades, it has been theoretically and experimentally demonstrated that seismic metamaterials are capable of isolating seismic surface waves. Inertial amplification mechanisms with small mass have been proposed to design metamaterials to isolate elastic waves in rods, beams, and plates at low frequencies. In this Letter, we propose an alternative type of seismic metamaterial providing an ultra-low-frequency bandgap induced by inertial amplification. A unique kind of inertially amplified metamaterial is first conceived and designed. Its bandgap characteristics for flexural waves are then numerically and experimentally demonstrated. Finally, the embedded inertial amplification mechanism is introduced on a soil substrate to design a seismic metamaterial capable of strongly attenuating seismic surface waves around a frequency of 4 Hz. This work provides a promising alternative way to conceive seismic metamaterials to steer and control surface waves.
Publisher: AIP Publishing LLC
Journal: Applied physics letters 
ISSN: 0003-6951
EISSN: 1077-3118
DOI: 10.1063/5.0102821
Rights: © 2022 Author(s). Published under an exclusive license by AIP Publishing.
This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Zeng, Y., Cao, L., Wan, S., Guo, T., An, S., Wang, Y.-F., Du, Q.-J., Vincent, B., Wang, Y.-S., & Assouar, B. (2022). Inertially amplified seismic metamaterial with an ultra-low-frequency bandgap. Applied Physics Letters, 121(8) and may be found at https://doi.org/10.1063/5.0102821.
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