Low-frequency and broadband vibration energy harvester driven by mechanical impact based on layer-separated piezoelectric beam

被引:0
作者
Dongxing Cao
Wei Xia
Wenhua Hu
机构
[1] Beijing University of Technology,College of Mechanical Engineering
[2] Beijing Key Laboratory of Nonlinear Vibrations and Strength of Mechanical Structures,School of Mechanical Engineering
[3] Tianjin University of Technology,undefined
来源
Applied Mathematics and Mechanics | 2019年 / 40卷
关键词
vibration energy harvester (VEH); layer-separated piezoelectric beam; low-frequency; broad-bandwidth; O242; 74S05;
D O I
暂无
中图分类号
学科分类号
摘要
Vibration energy harvesting is to transform the ambient mechanical energy to electricity. How to reduce the resonance frequency and improve the conversion efficiency is very important. In this paper, a layer-separated piezoelectric cantilever beam is proposed for the vibration energy harvester (VEH) for low-frequency and wide-bandwidth operation, which can transform the mechanical impact energy to electric energy. First, the electromechanical coupling equation is obtained by the Euler-Bernoulli beam theory. Based on the average method, the approximate analytical solution is derived and the voltage response is obtained. Furthermore, the physical prototype is fabricated, and the vibration experiment is conducted to validate the theoretical principle. The experimental results show that the maximum power of 0.445 □W of the layer-separated VEH is about 3.11 times higher than that of the non-impact harvester when the excitation acceleration is 0.2 g. The operating frequency bandwidth can be widened by increasing the stiffness of the fundamental layer and decreasing the gap distance of the system. But the increasing of operating frequency bandwidth comes at the cost of reducing peak voltage. The theoretical simulation and the experimental results demonstrate good agreement which indicates that the proposed impact-driving VEH device has advantages for low-frequency and wide-bandwidth. The high performance provides great prospect to scavenge the vibration energy in environment.
引用
收藏
页码:1777 / 1790
页数:13
相关论文
共 126 条
  • [1] Fang Z W(2017)Integration of a nonlinear energy sink and a giant magnetostrictive energy harvester Journal of Sound and Vibration 391 35-49
  • [2] Zhang Y W(2018)Magnetically coupled flextensional transducer for wideband vibration energy harvesting: design, modeling and experiments Journal of Sound and Vibration 416 55-79
  • [3] Li X(2016)A cm scale electret-based electrostatic wind turbine for low-speed energy harvesting applications Smart Materials and Structures 25 045015-61
  • [4] Ding H(2018)Ferroelectret nanogenerator with large transverse piezoelectric activity Nano Energy 50 52-1692
  • [5] Chen L Q(2014)Piezoelectret foam-based vibration energy harvesting Journal of Intelligent Material Systems and Structures 25 1681-180
  • [6] Zou H(2019)Nonlinear energy harvesting based on a modified snap-through mechanism Applied Mathematics and Mechanics (English Edition) 40 167-2880
  • [7] Zhang W(2015)Internal resonance for nonlinear vibration energy harvesting European Physical Journal-Special Topics 224 2867-1114
  • [8] Li W(2019)A novel low-frequency broadband piezoelectric energy harvester combined with a negative stiffness vibration isolator Journal of Intelligent Material Systems and Structures 30 1105-742
  • [9] Wei K(2009)Periodic and chaotic dynamics of composite laminated piezoelectric rectangular plate with one-to-two internal resonance Science China-Technological Sciences 52 731-207
  • [10] Hu K(2018)Chaotic wave motions and chaotic dynamic responses of piezoelectric laminated composite rectangular thin plate under combined transverse and in-plane excitations International Journal of Applied Mechanics 10 28-39