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Functionally Graded Piezoelectric Energy Harvester: A Numerical Studyopen access

Authors
Kumar, AnuruddhAnsari, Mohamed Nainar MohamedIbrahim, Sobhy M.Thomas, ParamanandamVaish, Rahul
Issue Date
Aug-2022
Publisher
MDPI
Keywords
functionally graded piezoelectric material (FGPM); energy harvesting; nonlinear vibration
Citation
ELECTRONICS, v.11, no.16, pp.1 - 19
Indexed
SCIE
SCOPUS
Journal Title
ELECTRONICS
Volume
11
Number
16
Start Page
1
End Page
19
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/172584
DOI
10.3390/electronics11162595
ISSN
2079-9292
Abstract
The performance of linear energy harvesters is primarily confined to a very narrow operating frequency bandwidth around its natural frequency. Even a slight deviation of the excitation frequency from the fundamental frequency of the system tremendously reduces the harvester's performance. In order to minimize this shortcoming, the presented study considers the piezoelectric energy harvester with magnets introducing non-linearity in the system. The simple harmonic balance method is used to solve the non-linearity and for computing the voltage output and power in the frequency domain. In addition, the study also incorporates the functionally graded piezoelectric materials because of their superior properties. The distance between magnets (d(0)) has been varied from 0.4 mm to 10 mm along with grading index (n) in the range of 0 to infinity. Finally, voltage and power across the resistance were computed. The effective harvesting frequency range for d(0) = 0.4 mm and n = 1 is observed in the range of 20 Hz to 85 Hz, while it was only between 35 Hz and 65 Hz for d(0) = 10 mm, yielding a 216% increase in the frequency bandwidth. Under different case studies, the peak output power varied from 2 mW (d(0) = 0.4 mm and n = infinity) to 6 mW (d(0) = 10 mm and n = 0).
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Kumar, Anuruddh
서울 부총장(서울) (서울 창의융합교육원)
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