Back to Search Start Over

A nonlinear damped metamaterial: Wideband attenuation with nonlinear bandgap and modal dissipation.

Authors :
Zhao, Bao
Thomsen, Henrik R.
Pu, Xingbo
Fang, Shitong
Lai, Zhihui
Damme, Bart Van
Bergamini, Andrea
Chatzi, Eleni
Colombi, Andrea
Source :
Mechanical Systems & Signal Processing. Feb2024, Vol. 208, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

In this paper, we incorporate the effect of nonlinear damping with the concept of locally resonant metamaterials to enable vibration attenuation beyond the conventional bandgap range. The proposed design combines a linear host cantilever beam and periodically distributed inertia amplifiers as nonlinear local resonators. The geometric nonlinearity induced by the inertia amplifiers causes an amplitude-dependent nonlinear damping effect. Through the implementation of both modal superposition and numerical harmonic methods with Alternating Frequency Time and numerical continuation techniques, the finite nonlinear metamaterial is accurately modeled. The resulting nonlinear frequency response reveals the bandgap is both amplitude-dependent and broadened. Furthermore, the nonlinear interaction between the local resonators and the mode shapes of the host beam is discussed, which leads to efficient modal frequency dissipation ability. The theoretical results are validated experimentally. By embedding the nonlinear damping effect into locally resonant metamaterials, wideband and shock wave attenuation of the proposed metamaterial is achieved, which opens new possibilities for versatile metamaterials beyond the conventional bandgap ranges of their linear counterparts. • A nonlinear metamaterial attenuates vibration beyond the bandgap range of the linear counterparts. • Nonlinear dispersion and frequency response by homogenization and harmonic balance methods. • Nonlinear damping effect enables efficient modal frequency dissipation. • Experiments validate the broadening of bandgap and modal frequency dissipation. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
08883270
Volume :
208
Database :
Academic Search Index
Journal :
Mechanical Systems & Signal Processing
Publication Type :
Academic Journal
Accession number :
174642828
Full Text :
https://doi.org/10.1016/j.ymssp.2023.111079