TY - JOUR
T1 - Valley-protected topological interface state of the elastic wave
T2 - From discrete model to multistable mechanical metamaterials
AU - Qi, Dexing
AU - Ren, Zhiwen
AU - Qu, Zhaoliang
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/7/7
Y1 - 2022/7/7
N2 - Topological metamaterials provide a new strategy to guide wave energy and exhibit unprecedented robustness. In this study, a novel design strategy is proposed to realize programmable topological metamaterials with local resonant eigenstates. Firstly, in the discrete spring-mass model, two resonant masses and two base masses are introduced into the hexagonal lattice, and a local resonant eigenstate-induced Dirac cone can be formed at the high symmetry point of the Brillouin zone. By introducing the spring stiffness difference, a topological bandgap is opened near the Dirac degeneracy frequency. Thereafter, the nontrivial nature of the bandgap is verified by the theoretical evaluation of the Berry curvature and Chern number. Secondly, the symmetry-breaking configuration is extended to a continuum plate-resonator model. The numerical results demonstrate that the interface state wave propagates along the interface path at a frequency located at the edge-bulk band. Finally, by using the asymmetric effective stiffness of the bistable structure between tension and compression, a programmable topological interface path is realized. The proposed reconfigurable design based on asymmetry significantly expands the design space of metamaterials.
AB - Topological metamaterials provide a new strategy to guide wave energy and exhibit unprecedented robustness. In this study, a novel design strategy is proposed to realize programmable topological metamaterials with local resonant eigenstates. Firstly, in the discrete spring-mass model, two resonant masses and two base masses are introduced into the hexagonal lattice, and a local resonant eigenstate-induced Dirac cone can be formed at the high symmetry point of the Brillouin zone. By introducing the spring stiffness difference, a topological bandgap is opened near the Dirac degeneracy frequency. Thereafter, the nontrivial nature of the bandgap is verified by the theoretical evaluation of the Berry curvature and Chern number. Secondly, the symmetry-breaking configuration is extended to a continuum plate-resonator model. The numerical results demonstrate that the interface state wave propagates along the interface path at a frequency located at the edge-bulk band. Finally, by using the asymmetric effective stiffness of the bistable structure between tension and compression, a programmable topological interface path is realized. The proposed reconfigurable design based on asymmetry significantly expands the design space of metamaterials.
KW - Local resonant
KW - Mechanical honeycomb lattice
KW - Multistable metamaterial
KW - Programmable interface state
KW - Valley Hall insulator
KW - k·p perturbative method
UR - http://www.scopus.com/inward/record.url?scp=85127111669&partnerID=8YFLogxK
U2 - 10.1016/j.jsv.2022.116908
DO - 10.1016/j.jsv.2022.116908
M3 - Article
AN - SCOPUS:85127111669
SN - 0022-460X
VL - 529
JO - Journal of Sound and Vibration
JF - Journal of Sound and Vibration
M1 - 116908
ER -