DocumentCode
605190
Title
Shape Optimization of Cantilever-based MEMS Piezoelectric Energy Harvester for Low Frequency Applications
Author
Saadon, S. ; Sidek, Othman
Author_Institution
Sch. of Electr. & Electron. Eng., Univ. Sains Malaysia (USM), Nibong Tebal, Malaysia
fYear
2013
fDate
10-12 April 2013
Firstpage
202
Lastpage
208
Abstract
The ambient vibration-based micro electromechanical systems (MEMS) piezoelectric harvester has become an important subject in most research publications. Providing a green and virtually infinite alternative power source to traditional energy sources, this harvester will significantly expand the applications of wireless sensor networks and other technologies. Using piezoelectric materials to harvest the ambient vibrations that surround a system is one method that has seen a dramatic rise in the power-harvesting applications. The simplicity associated with piezoelectric micro-generators makes them very attractive for MEMS applications in which ambient vibrations are harvested and converted into electric energy. These micro-generators can become an alternative to the battery-based solutions in the future, especially for remote systems. In this paper, we propose a model and present the simulation of a MEMS-based energy harvester under ambient vibration excitation using the COVENTORWARE2010 approaches. This E-shaped cantilever-based MEMS energy harvester that operates under ambient excitation in frequencies of 12.8, 17.1, and 21.3 Hz within a base acceleration of 1 m/s2 produces an output power of 1.0 W at 2kO load.
Keywords
cantilevers; energy harvesting; micromechanical devices; optimisation; piezoelectric materials; wireless sensor networks; COVENTORWARE2010; E-shaped cantilever; ambient vibration; cantilever-based MEMS; energy sources; frequency 12.8 Hz; frequency 17.1 Hz; frequency 21.3 Hz; low frequency applications; microelectromechanical systems; piezoelectric energy harvester; piezoelectric materials; piezoelectric microgenerators; power source; shape optimization; wireless sensor networks; Mathematical model; Micromechanical devices; Piezoelectric materials; Resonant frequency; Structural beams; Vibrations; Piezoelectric materials; Energy conversion; shaped cantilever; MEMS;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Modelling and Simulation (UKSim), 2013 UKSim 15th International Conference on
Conference_Location
Cambridge
Print_ISBN
978-1-4673-6421-8
Type
conf
DOI
10.1109/UKSim.2013.125
Filename
6527416
Link To Document