TY - JOUR
T1 - Ultralow frequency acoustic bandgap and vibration energy recovery in tetragonal folding beam phononic crystal
AU - Gao, Nansha
AU - Wu, Jiu Hui
AU - Yu, Lie
AU - Hou, Hong
N1 - Publisher Copyright:
© 2016 World Scientific Publishing Company.
PY - 2016/7/20
Y1 - 2016/7/20
N2 - This paper investigates ultralow frequency acoustic properties and energy recovery of tetragonal folding beam phononic crystal (TFBPC) and its complementary structure. The dispersion curve relationships, transmission spectra and displacement fields of the eigenmodes are studied with FEA in detail. Compared with the traditional three layer phononic crystal (PC) structure, this structure proposed in this paper not only unfold bandgaps (BGs) in lower frequency range (below 300 Hz), but also has lighter weight because of beam structural cracks. We analyze the relevant physical mechanism behind this phenomenon, and discuss the effects of the tetragonal folding beam geometric parameters on band structure maps. FEM proves that the multi-cell structures with different arrangements have different acoustic BGs when compared with single cell structure. Harmonic frequency response and piezoelectric properties of TFBPC are specifically analyzed. The results confirm that this structure does have the recovery ability for low frequency vibration energy in environment. These conclusions in this paper could be indispensable to PC practical applications such as BG tuning and could be applied in portable devices, wireless sensor, micro-electro mechanical systems which can recycle energy from vibration environment as its own energy supply.
AB - This paper investigates ultralow frequency acoustic properties and energy recovery of tetragonal folding beam phononic crystal (TFBPC) and its complementary structure. The dispersion curve relationships, transmission spectra and displacement fields of the eigenmodes are studied with FEA in detail. Compared with the traditional three layer phononic crystal (PC) structure, this structure proposed in this paper not only unfold bandgaps (BGs) in lower frequency range (below 300 Hz), but also has lighter weight because of beam structural cracks. We analyze the relevant physical mechanism behind this phenomenon, and discuss the effects of the tetragonal folding beam geometric parameters on band structure maps. FEM proves that the multi-cell structures with different arrangements have different acoustic BGs when compared with single cell structure. Harmonic frequency response and piezoelectric properties of TFBPC are specifically analyzed. The results confirm that this structure does have the recovery ability for low frequency vibration energy in environment. These conclusions in this paper could be indispensable to PC practical applications such as BG tuning and could be applied in portable devices, wireless sensor, micro-electro mechanical systems which can recycle energy from vibration environment as its own energy supply.
KW - bandgaps
KW - low frequency noise control
KW - Tetragonal folding beam phononic crystal
KW - vibration energy recovery
UR - http://www.scopus.com/inward/record.url?scp=84975492786&partnerID=8YFLogxK
U2 - 10.1142/S0217979216501113
DO - 10.1142/S0217979216501113
M3 - 文章
AN - SCOPUS:84975492786
SN - 0217-9792
VL - 30
JO - International Journal of Modern Physics B
JF - International Journal of Modern Physics B
IS - 18
M1 - 1650111
ER -