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Acoustic metamaterials with coupled local resonators for broadband vibration suppression
Author(s) -
Guobiao Hu,
Lihua Tang,
Raj Das,
Shiqiao Gao,
Haipeng Liu
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4977559
Subject(s) - metamaterial , resonator , dimensionless quantity , band gap , broadband , vibration , parametric statistics , acoustic metamaterials , frequency band , physics , acoustics , lattice (music) , materials science , condensed matter physics , optics , computational physics , bandwidth (computing) , mechanics , telecommunications , mathematics , computer science , statistics
This paper investigates a modified acoustic metamaterial system with local resonators coupled through linear springs. The proposed acoustic metamaterial system can provide three band gaps for broadband vibration suppression. First, the band structure of the modified acoustic metamaterial is calculated by using Bloch’s theorem under the assumption of infinite lattice. The existence of three band gaps is confirmed in the band structure. Effects of mass and spring parameters on the band gap behaviour of the modified metamaterial are investigated through a dimensionless parametric study. Based on the parametric study, optimal dimensionless parameters are proposed to achieve maximal total band gap width in the low frequency range. Subsequently, a more realistic finite lattice model is established. The transmittances of the conventional and modified metamaterial systems are compared. The three band gaps predicted from transmittances and broadband vibration suppression behaviour are consistent with the predictions from infinite lattice model using Bloch’s theorem. Finally, the time-domain responses are simulated and the superiority of the modified acoustic metamaterial over the conventional one is demonstrated

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