TY - JOUR
T1 - Bandgap Tuning Based on Multi-Stable Metamaterial with Multi-Step Deformation
AU - Sheng, Tianhao
AU - Hou, Xiuhui
AU - Qi, Liyuan
AU - Xie, Feng
AU - Ding, Bin
AU - Zhang, Kai
AU - Deng, Zichen
N1 - Publisher Copyright:
© 2025 World Scientific Publishing Company.
PY - 2024
Y1 - 2024
N2 - Mechanical metamaterials are highly versatile structures capable of achieving unconventional mechanical properties. Of particular interest are mechanical metamaterials with the ability to tune bandgaps, offering potential applications in vibration control tailored to specific requirements. In this study, a new type of metamaterial is introduced to exhibit a distinctive two-step deformation mode under compressive displacement. Through a combination of numerical simulation and experimental verification, the band structure and vibration characteristics of the novel metamaterial in different stable states are thoroughly examined under compressive displacement. The results demonstrate that, in comparison to the initial structure, the novel mechanical metamaterial effectively addresses the issue of a significant reduction in plateau stress relative to buckling stress following buckling in the second deformation stage. The novel structure showcases notable controllable deformation capabilities, yielding distinct band structures in various stable states, and facilitating bandgap tuning. Furthermore, the study explores the influence of geometrical parameters and stable state transitions on bandgap evolution, supported by frequency response analyses and experimental validation. This research offers a fresh perspective on the utilization of Multistable Multi-Step Deformation Metamaterial (MMDM) for energy absorption and vibration damping applications.
AB - Mechanical metamaterials are highly versatile structures capable of achieving unconventional mechanical properties. Of particular interest are mechanical metamaterials with the ability to tune bandgaps, offering potential applications in vibration control tailored to specific requirements. In this study, a new type of metamaterial is introduced to exhibit a distinctive two-step deformation mode under compressive displacement. Through a combination of numerical simulation and experimental verification, the band structure and vibration characteristics of the novel metamaterial in different stable states are thoroughly examined under compressive displacement. The results demonstrate that, in comparison to the initial structure, the novel mechanical metamaterial effectively addresses the issue of a significant reduction in plateau stress relative to buckling stress following buckling in the second deformation stage. The novel structure showcases notable controllable deformation capabilities, yielding distinct band structures in various stable states, and facilitating bandgap tuning. Furthermore, the study explores the influence of geometrical parameters and stable state transitions on bandgap evolution, supported by frequency response analyses and experimental validation. This research offers a fresh perspective on the utilization of Multistable Multi-Step Deformation Metamaterial (MMDM) for energy absorption and vibration damping applications.
KW - bandgap tuning
KW - Mechanical metamaterials
KW - multi-step deformation
KW - multistability
UR - http://www.scopus.com/inward/record.url?scp=85202149672&partnerID=8YFLogxK
U2 - 10.1142/S0219455425502013
DO - 10.1142/S0219455425502013
M3 - 文章
AN - SCOPUS:85202149672
SN - 0219-4554
JO - International Journal of Structural Stability and Dynamics
JF - International Journal of Structural Stability and Dynamics
M1 - 2550201
ER -