DocumentCode :
24551
Title :
A Piezoelectric Energy Harvester for Rotary Motion Applications: Design and Experiments
Author :
Khameneifar, Farbod ; Arzanpour, Siamak ; Moallem, Mehrdad
Author_Institution :
Dept. of Mechatron. Syst. Eng., Simon Fraser Univ., Surrey, BC, Canada
Volume :
18
Issue :
5
fYear :
2013
fDate :
Oct. 2013
Firstpage :
1527
Lastpage :
1534
Abstract :
This paper investigates the analysis and design of a vibration-based energy harvester for rotary motion applications. The energy harvester consists of a cantilever beam with a tip mass and a piezoelectric ceramic attached along the beam that is mounted on a rotating shaft. Using this system, mechanical vibration energy is induced in the flexible beam due to the gravitational force applied to the tip mass while the hub is rotating. The piezoelectric transducer is used to convert the induced mechanical vibration energy into electricity. The equations of motion of the flexible structure are utilized along with the physical characteristics of the piezoelectric transducer to derive expressions for the electrical power. Furthermore, expressions for the optimum load resistance and maximum output power are obtained and validated experimentally using PVDF and PZT transducers. The results indicate that a maximum power of 6.4 mW at a shaft speed of 138 rad/s can be extracted by using a PZT transducer with dimensions 50.8 mm × 38.1 mm × 0.13 mm. This amount of power is sufficient to provide power for typical wireless sensors such as accelerometers and strain gauges.
Keywords :
cantilevers; energy harvesting; lead compounds; piezoelectric transducers; wireless sensor networks; zirconium compounds; PVDF transducers; PZT; PZT transducers; cantilever beam; electrical power; flexible structure; gravitational force; induced mechanical vibration energy; maximum output power; physical characteristics; piezoelectric ceramic; piezoelectric energy harvester; piezoelectric transducer; power 6.4 mW; rotary motion applications; rotating shaft; tip mass; vibration-based energy harvester; wireless sensors; Damping; Energy harvesting; Equations; Mathematical model; Piezoelectric transducers; Structural beams; Vibrations; Cantilever beam; energy harvesting; piezoelectric transducers; power optimization; rotational motion;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2012.2205266
Filename :
6238375
Link To Document :
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