Design of arc spiral piezoelectric vibration energy harvester

被引:0
|
作者
Deng L. [1 ]
Tang S. [1 ]
Wang D. [1 ]
机构
[1] College of Integrated Circuit Science and Engineering, Nanjing University of Posts and Telecommunications, Nanjing
关键词
Arc spiral; Output performance; Output power; Piezoelectric energy harvesting; Resonant frequency;
D O I
10.19650/j.cnki.cjsi.J2209768
中图分类号
学科分类号
摘要
To achieve low-frequency, multi-directional energy harvesting and high output performance, a piezoelectric energy harvesting system with arc helix structure is proposed in this article. The arc helical piezoelectric energy harvester cannot only reduce the resonance frequency and the volume of the system, but also the arc type cantilever beam has asymmetry. Therefore, the multi-directional collection can be performed. The stress distribution, the resonant frequency and the output performance of the energy harvesting system with different radians are analyzed theoretically. The 2π, 3π, and 4π arc spiral piezoelectric vibration energy harvesting system are fabricated, and their performance are measured and compared. Results show that the 4π arc spiral piezoelectric energy harvesting system has better output performance. The resonant frequency is 47 Hz, the output voltage is 23 V, and the output power is 353 μW. The arc spiral piezoelectric vibration energy harvesting system can be applied to human health detection, environmental control systems, embedded systems, military security and other application fields. © 2022, Science Press. All right reserved.
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页码:50 / 57
页数:7
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共 20 条
  • [1] RUI X B, ZHANG Y, ZENG ZH M., Rotational motion energy harvesting technology and its realization, Chinese Journal of Scientific Instrument, 41, 9, pp. 1-11, (2020)
  • [2] TWIEFEL J, WESTERMANN H., Survey on broadband techniques for vibration energy harvesting, Journal of Intelligent Material Systems and Structures, 24, 11, pp. 1291-1302, (2013)
  • [3] LU H Z, ZHU Y CH, LIU Q C, Et al., Research on the efficiency of cantilever piezoelectric energy collector, Chinese Journal of Scientific Instrument, 40, 3, pp. 181-187, (2019)
  • [4] ANTON S R, SODANO H A., A review of power harvesting using piezoelectric materials, Smart Materials and Structures, 16, 3, pp. R1-R21, (2007)
  • [5] ZHANG K, WU K D, SU Y F., Wideband vibration harvester based on piecewise linear system, Journal of Electronic Measurement and Instrumentation, 34, 9, pp. 140-145, (2020)
  • [6] DRAGAN D., Ferroelectric dielectric and piezoelectric properties of ferroelectric thin films and ceramics, Reports on Progress in Physics, 61, 9, pp. 1267-1324, (1998)
  • [7] ISARAKORN D, SAMBRI A, JANPHUANG P, Et al., Epitaxial piezoelectric MEMS on silicon, Journal of Micromechanics and Microengineering, 20, 5, (2010)
  • [8] BELTRAN C F, SILVA N G., Active vibration control in Duffing mechanical systems using dynamic vibration absorbers, Journal of Sound & Vibration, 333, 14, pp. 3019-3030, (2014)
  • [9] GUO T Y, XU Z, JIN L, Et al., Optimized structure design of a bridge-like piezoelectric energy harvester based on finite element analysis, Proceedings of 2017 20th International Conference on Electrical Machines and Systems (ICEMS), pp. 1-5, (2017)
  • [10] ZHOU Y H, WEN ZH Y, HE X M, Et al., Structural optimization design and experiment of AlN piezoelectric vibration energy harvester, Sensors and Microsystems, 37, 7, pp. 18-21, (2018)