Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester

This study proposes the investigation of two piezoelectric material namely PZT and Lanthanum Doped Barium Titanate (BaLaTiO3) performance as a vibration based energy harvester. The piezoelectric material when applied mechanical stress or strain produces electricity through the piezoelectric effect....

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Main Authors: Pak Nehemiah, Aris Hasnizah, Taib Bibi Nadia
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201716201079
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spelling doaj-02fee4227fb54a0d8c7849793cb83c4a2021-08-02T03:57:09ZengEDP SciencesEPJ Web of Conferences2100-014X2017-01-011620107910.1051/epjconf/201716201079epjconf_incape2017_01079Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvesterPak NehemiahAris HasnizahTaib Bibi NadiaThis study proposes the investigation of two piezoelectric material namely PZT and Lanthanum Doped Barium Titanate (BaLaTiO3) performance as a vibration based energy harvester. The piezoelectric material when applied mechanical stress or strain produces electricity through the piezoelectric effect. The vibration energy would exude mechanical energy and thus apply mechanical force on the energy harvester. The energy harvester would be designed and simulated using the piezoelectric material individually. The studied outputs are divided to frequency response, the load dependence, and the acceleration dependence whereby measurement are observed and taken at maximum power output. The simulation is done using the cantilevers design which employs d31 type of constants. Three different simulations to study the dependence of output power on the resonant frequency response, load and acceleration have found that material that exhibit highest power generation was the BaLaTiO3.https://doi.org/10.1051/epjconf/201716201079
collection DOAJ
language English
format Article
sources DOAJ
author Pak Nehemiah
Aris Hasnizah
Taib Bibi Nadia
spellingShingle Pak Nehemiah
Aris Hasnizah
Taib Bibi Nadia
Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
EPJ Web of Conferences
author_facet Pak Nehemiah
Aris Hasnizah
Taib Bibi Nadia
author_sort Pak Nehemiah
title Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
title_short Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
title_full Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
title_fullStr Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
title_full_unstemmed Investigation of the performances of PZT vs rare earth (BaLaTiO3) vibration based energy harvester
title_sort investigation of the performances of pzt vs rare earth (balatio3) vibration based energy harvester
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2017-01-01
description This study proposes the investigation of two piezoelectric material namely PZT and Lanthanum Doped Barium Titanate (BaLaTiO3) performance as a vibration based energy harvester. The piezoelectric material when applied mechanical stress or strain produces electricity through the piezoelectric effect. The vibration energy would exude mechanical energy and thus apply mechanical force on the energy harvester. The energy harvester would be designed and simulated using the piezoelectric material individually. The studied outputs are divided to frequency response, the load dependence, and the acceleration dependence whereby measurement are observed and taken at maximum power output. The simulation is done using the cantilevers design which employs d31 type of constants. Three different simulations to study the dependence of output power on the resonant frequency response, load and acceleration have found that material that exhibit highest power generation was the BaLaTiO3.
url https://doi.org/10.1051/epjconf/201716201079
work_keys_str_mv AT paknehemiah investigationoftheperformancesofpztvsrareearthbalatio3vibrationbasedenergyharvester
AT arishasnizah investigationoftheperformancesofpztvsrareearthbalatio3vibrationbasedenergyharvester
AT taibbibinadia investigationoftheperformancesofpztvsrareearthbalatio3vibrationbasedenergyharvester
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