TY - JOUR
T1 - Nonlinear dynamical and harvesting characteristics of bistable energy harvester under hybrid base vibration and galloping
AU - Li, Haitao
AU - Dong, Bojian
AU - Cao, Fan
AU - Qin, Weiyang
AU - Ding, Hu
AU - Chen, Liqun
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/10
Y1 - 2023/10
N2 - To harvest wind energy and vibration energy simultaneously, the nonlinear dynamical and harvesting characteristics of a bistable piezoelectric energy harvester (BPEH) under hybrid excitations are studied in this manuscript. A distributed model of BPEH is established by the generalized Hamilton's principle, Kirchhoff's law, and the quasi-steady hypothesis. The influences of wind speed, base excitation level, magnetic distance and resistance are studied by the harmonic balance method (HBM). The results show that the structure can be optimized to reach the best harvesting performance for wind energy and vibration energy. The analytical prediction and simulation results are verified by the experiments. The coexisting solutions appear while the BPEH is under a hybrid excitation of wind galloping and base vibration. The dynamical response will approach different branches for different initial conditions, by which the system can be intentionally designed to attain the high energy orbit. The experimental results show that the BPEH could reach the highest output efficiency while it undergoes the motion of inter-well period-1. Thus, a high energy output can be realized by controlling the initial conditions to the desired range. This study could provide a comprehensive insight into the promotion of harvesting performance for hybrid ambient excitations.
AB - To harvest wind energy and vibration energy simultaneously, the nonlinear dynamical and harvesting characteristics of a bistable piezoelectric energy harvester (BPEH) under hybrid excitations are studied in this manuscript. A distributed model of BPEH is established by the generalized Hamilton's principle, Kirchhoff's law, and the quasi-steady hypothesis. The influences of wind speed, base excitation level, magnetic distance and resistance are studied by the harmonic balance method (HBM). The results show that the structure can be optimized to reach the best harvesting performance for wind energy and vibration energy. The analytical prediction and simulation results are verified by the experiments. The coexisting solutions appear while the BPEH is under a hybrid excitation of wind galloping and base vibration. The dynamical response will approach different branches for different initial conditions, by which the system can be intentionally designed to attain the high energy orbit. The experimental results show that the BPEH could reach the highest output efficiency while it undergoes the motion of inter-well period-1. Thus, a high energy output can be realized by controlling the initial conditions to the desired range. This study could provide a comprehensive insight into the promotion of harvesting performance for hybrid ambient excitations.
KW - Bistable energy harvester
KW - Coexisting solution
KW - Hybrid excitation
UR - http://www.scopus.com/inward/record.url?scp=85165541018&partnerID=8YFLogxK
U2 - 10.1016/j.cnsns.2023.107400
DO - 10.1016/j.cnsns.2023.107400
M3 - 文章
AN - SCOPUS:85165541018
SN - 1007-5704
VL - 125
JO - Communications in Nonlinear Science and Numerical Simulation
JF - Communications in Nonlinear Science and Numerical Simulation
M1 - 107400
ER -