Nonlinear energy harvesting based on a modified snap-through mechanism

被引:0
作者
Zeqi Lu
Ke Li
Hu Ding
Liqun Chen
机构
[1] Shanghai University,Shanghai Institute of Applied Mathematics and Mechanics
[2] Shanghai University,Shanghai Key Laboratory of Mechanics in Energy Engineering
[3] Shanghai University,Department of Mechanics, College of Sciences
来源
Applied Mathematics and Mechanics | 2019年 / 40卷
关键词
energy harvesting; nonlinear stiffness; snap-through; random excitation; O322; 34E13;
D O I
暂无
中图分类号
学科分类号
摘要
A modified snap-through mechanism is used in an electromagnetic energy harvester to improve its effectiveness. It mainly comprises three springs that are configured so that the potential energy of the system has two stable equilibrium points. In particular, the small vibration behavior of the harvester around one of the equilibriums is of interest. A multi-scale method (MSM) is used to analyze the frequency response curve. Two snap-through mechanisms are considered. One has both horizontal and vertical springs. The other has only horizontal springs. The frequency response curves of these two classes are compared under the same excitation and electric loading conditions. The latter exhibits more bending of the frequency response curve than the former one. The results are also validated by some numerical work. The averaged power subject to the Gaussian white noise is calculated numerically, and the results demonstrate that bi-stable energy harvesting with only horizontal springs can outperform the mechanism with both horizontal and vertical springs for the same distance between two equilibriums.
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页码:167 / 180
页数:13
相关论文
共 84 条
[1]  
Glynne-Jones P.(2014)An electromagnetic, vibration-powered generator for intelligent sensor systems Sensors and Actuators A 110 344-349
[2]  
Tudor M. J.(2017)Nonlinear oscillations of sigmoid functionally graded material plates moving in longitudinal direction Applied Mathematics and Mechanics (English Edition) 38 1533-1550
[3]  
Beeby S. P.(2014)Nonlinear characteristics of circularcylinder piezoelectric power harvester near resonance based on flow-induced flexural vibration mode Applied Mathematics and Mechanics (English Edition) 35 229-236
[4]  
White N. M.(2014)On the role of nonlinearities in vibratory energy harvesting: a critical review and discussion ASME Applied Mechanics Review 66 040801-306
[5]  
Wang Y. Q.(2017)Vibrational energy harvesting by exploring structural benefits and nonlinear characteristics Communication in Nonlinear Science and Numerical Simulations 48 288-1030
[6]  
Zu J. W.(2017)Integration of a nonlinear energy sink and a piezoelectric energy harvester Applied Mathematics and Mechanics (English Edition) 38 1019-1897
[7]  
Wang H.(2011)Comparing linear and essentially nonlinear vibration-based energy harvesting ASME Journal of Vibration and Acoustics 133 011001-29
[8]  
Xie J.(2010)Toward broadband vibration-based energy harvesting Journal Intelligent Material Systems and Structures 21 1867-18
[9]  
Xie X.(2010)Strategies for increasing the operating frequency range of vibration energy harvesters: a review Measurement Science and Technology 21 1-1312
[10]  
Hu Y.(2010)Tuning resonant energy harvester using a generalized electrical load Smart Material and Structure 19 055003-2353