DocumentCode
915016
Title
Consideration of Impedance Matching Techniques for Efficient Piezoelectric Energy Harvesting
Author
Kim, Hyeoungwoo ; Priya, Shashank ; Stephanou, Harry ; Uchino, Kenji
Author_Institution
Univ. of Texas, Arlington
Volume
54
Issue
9
fYear
2007
fDate
9/1/2007 12:00:00 AM
Firstpage
1851
Lastpage
1859
Abstract
This study investigates multiple levels of impedance-matching methods for piezoelectric energy harvesting in order to enhance the conversion of mechanical to electrical energy. First, the transduction rate was improved by using a high piezoelectric voltage constant (g) ceramic material having a magnitude of g33 = 40 times 10-3 V m/N. Second, a transducer structure, cymbal, was optimized and fabricated to match the mechanical impedance of vibration source to that of the piezoelectric transducer. The cymbal transducer was found to exhibit ~40 times higher effective strain coefficient than the piezoelectric ceramics. Third, the electrical impedance matching for the energy harvesting circuit was considered to allow the transfer of generated power to a storage media. It was found that, by using the 10-layer ceramics instead of the single layer, the output current can be increased by 10 times, and the output load can be reduced by 40 times. Furthermore, by using the multilayer ceramics the output power was found to increase by 100%. A direct current (DC)-DC buck converter was fabricated to transfer the accumulated electrical energy in a capacitor to a lower output load. The converter was optimized such that it required less than 5 mW for operation.
Keywords
capacitor storage; direct energy conversion; electric impedance; electric power generation; multilayers; piezoceramics; piezoelectric transducers; storage media; 10-layer ceramics; capacitor; cymbal transducer; direct current-DC buck converter; electric impedance-matching methods; generated power transfer; high piezoelectric voltage constant ceramic; mechanical impedance; mechanical-electrical energy conversion; multilayer ceramics; piezoelectric energy harvesting circuit; piezoelectric transducer; storage media; strain coefficient; transduction rate; vibration source; Capacitive sensors; Ceramics; Circuits; Energy storage; Impedance matching; Piezoelectric materials; Piezoelectric transducers; Power generation; Vibrations; Voltage; Acoustics; Computer Simulation; Computer-Aided Design; Electric Impedance; Electrochemistry; Energy Transfer; Equipment Design; Equipment Failure Analysis; Models, Theoretical; Transducers; Vibration;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2007.469
Filename
4337745
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