Resonant frequency of bimorph triangular V-shaped piezoelectric cantilever energy harvester
Author(s):
Abstract:
The concept of energy harvesting is to design smart systems to capture the ambient energy and to convert it to usable electrical power for supplying small electronics devices and sensors. The goal is to develop autonomous and self-powered devices that do not need any replacement of traditional electrochemical batteries. Now piezoelectric cantilever structures are being used to harvest vibration energy for self-powered devices. However, the geometry of a piezoelectric cantilever beam will greatly affect its vibration energy harvesting ability. This paper deduces a remarkably precise analytical formula for calculating the fundamental resonant frequency of bimorph V-shaped cantilevers using Rayleigh method. This analytical formula, which is convenient for mechanical energy harvester design based on Piezoelectric effect, is then validated by ABAQUS simulation. This formula raises a new perspective that, among all the bimorph V-shaped cantilevers and in comparison with rectangular one, the simplest tapered cantilever beam can lead to maximum resonant frequency and highest sensitivity. The derived formula can be commonly used as a relatively precise rule of thumb in such systems.
Keywords:
Language:
English
Published:
Journal of Computational and Applied Research in Mechanical Engineering, Volume:6 Issue: 1, Autumn 2016
Pages:
65 to 73
https://magiran.com/p1585735
مقالات دیگری از این نویسنده (گان)
-
Experimental investigation of the mechanical behavior of the core composed of polyurethane foam and scoria mineral pumice for use in explosive energy absorbent sandwich panels
Mahmoud Kaffash Mirzarahimi *, Hossein Khodarahmi, Mojtaba Ghamarizadeh, Mojtaba Zia Shamami,
Journal of Solid and Fluid Mechanics, -
Analytical and Experimental Investigation into Increasing Operating Bandwidth of Piezoelectric Energy Harvesters
R. Hosseini *, M. Hamedi, H. Golparvar, O. Zargar
Journal of Mechanical Engineering, Summer-Autumn 2019