TY - JOUR
T1 - VIBRATION MODE ANALYSIS OF LOCAL RESONANCE METAMATERIAL WITH CHIRAL SPIRAL ELASTIC BEAMS
AU - Zeng, Tan
AU - Ni, Hengtai
AU - Kong, Chuijian
AU - Liu, Jing
N1 - Publisher Copyright:
© The Institution of Engineering & Technology 2024.
PY - 2024
Y1 - 2024
N2 - Local resonant metamaterials are highly effective for managing low-frequency vibrations in practical engineering applications. However, the focus of existing research on locally resonant metamaterials has predominantly been on their structural attributes, limiting the expansion of bandgaps that are generated through local resonance mechanisms. This study introduces a chiral spiral locally resonant metamaterial (CSLRM) designed to attenuate low-frequency vibrations. The proposed vibration damper, crafted from homogeneous materials, exhibits robust adaptability, high stability, and manufacturability, making it ideal for use in demanding engineering environments. The incorporation of resonators, consisting of chiral helical beams and mass blocks, into the supporting structure facilitates vibration control within compact spaces. Additionally, a finite element model of the CSLRM structure was developed, and its dispersion curves and vibration modes were analyzed to explore the bandgap formation mechanism and characterize the bandgap features of the CSLRM structure. This research advances the understanding of how to broaden and tune the bandgaps in locally resonant metamaterials.
AB - Local resonant metamaterials are highly effective for managing low-frequency vibrations in practical engineering applications. However, the focus of existing research on locally resonant metamaterials has predominantly been on their structural attributes, limiting the expansion of bandgaps that are generated through local resonance mechanisms. This study introduces a chiral spiral locally resonant metamaterial (CSLRM) designed to attenuate low-frequency vibrations. The proposed vibration damper, crafted from homogeneous materials, exhibits robust adaptability, high stability, and manufacturability, making it ideal for use in demanding engineering environments. The incorporation of resonators, consisting of chiral helical beams and mass blocks, into the supporting structure facilitates vibration control within compact spaces. Additionally, a finite element model of the CSLRM structure was developed, and its dispersion curves and vibration modes were analyzed to explore the bandgap formation mechanism and characterize the bandgap features of the CSLRM structure. This research advances the understanding of how to broaden and tune the bandgaps in locally resonant metamaterials.
KW - CHIRAL SPIRAL ELASTIC BEAMS
KW - LOCAL RESONANCE METAMATERIAL
KW - LOW-FREQUENCY VIBRATIONS
KW - MODE ANALYSIS
UR - http://www.scopus.com/inward/record.url?scp=85216648269&partnerID=8YFLogxK
U2 - 10.1049/icp.2024.3681
DO - 10.1049/icp.2024.3681
M3 - 会议文章
AN - SCOPUS:85216648269
SN - 2732-4494
VL - 2024
SP - 1475
EP - 1481
JO - IET Conference Proceedings
JF - IET Conference Proceedings
IS - 12
T2 - 14th International Conference on Quality, Reliability, Risk, Maintenance, and Safety Engineering, QR2MSE 2024
Y2 - 24 July 2024 through 27 July 2024
ER -