TY - JOUR
T1 - Design of radial phononic crystal using annular soft material with low-frequency resonant elastic structures
AU - Gao, Nansha
AU - Wu, Jiu Hui
AU - Yu, Lie
AU - Xin, Hang
N1 - Publisher Copyright:
© 2016 Elsevier B.V.
PY - 2016/10/7
Y1 - 2016/10/7
N2 - Using FEM, we theoretically study the vibration properties of radial phononic crystal (RPC) with annular soft material. The band structures, transmission spectra, and displacement fields of eigenmode are given to estimate the starting and cut-off frequency of band gaps. Numerical calculation results show that RPC with annular soft material can yield low-frequency band gaps below 350 Hz. Annular soft material decreases equivalent stiffness of the whole structure effectively, and makes corresponding band gaps move to the lower frequency range. Physical mechanism behind band gaps is the coupling effect between long or traveling wave in plate matrix and the vibrations of corrugations. By changing geometrical dimensions of plate thickness e, the length of silicone rubber h2, and the corrugation width b, we can control the location and width of the first band gap. These research conclusions of RPC structure with annular soft material can potentially be applied to optimize band gaps, generate filters, and design acoustic devices.
AB - Using FEM, we theoretically study the vibration properties of radial phononic crystal (RPC) with annular soft material. The band structures, transmission spectra, and displacement fields of eigenmode are given to estimate the starting and cut-off frequency of band gaps. Numerical calculation results show that RPC with annular soft material can yield low-frequency band gaps below 350 Hz. Annular soft material decreases equivalent stiffness of the whole structure effectively, and makes corresponding band gaps move to the lower frequency range. Physical mechanism behind band gaps is the coupling effect between long or traveling wave in plate matrix and the vibrations of corrugations. By changing geometrical dimensions of plate thickness e, the length of silicone rubber h2, and the corrugation width b, we can control the location and width of the first band gap. These research conclusions of RPC structure with annular soft material can potentially be applied to optimize band gaps, generate filters, and design acoustic devices.
KW - Annular soft material
KW - Band gaps
KW - Low-frequency vibration abatement
KW - Radial phononic crystal
UR - http://www.scopus.com/inward/record.url?scp=84983755327&partnerID=8YFLogxK
U2 - 10.1016/j.physleta.2016.08.010
DO - 10.1016/j.physleta.2016.08.010
M3 - 评论/辩论
AN - SCOPUS:84983755327
SN - 0375-9601
VL - 380
SP - 3326
EP - 3332
JO - Physics Letters, Section A: General, Atomic and Solid State Physics
JF - Physics Letters, Section A: General, Atomic and Solid State Physics
IS - 41
ER -