Power Optimization Configuration for Piezoelectric Cantilever Arrays

This paper investigates the changes in the output of the piezoelectric cantilever arrays when connected in different configurations. In this research matching load resistance determined and optimum output was measured by connecting the piezoelectric cantilever arrays to resistance ranging from 10 Ω...

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Main Authors: Jing Bong Yu, Leong Kok Swee
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201710808007
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spelling doaj-b81d242078194cdd86799161d14e03b92021-02-02T06:28:39ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011080800710.1051/matecconf/201710808007matecconf_icmaa2017_08007Power Optimization Configuration for Piezoelectric Cantilever ArraysJing Bong Yu0Leong Kok Swee1Faculty of Electronic and Computer Engineering, Universiti Teknikal Malaysia MelakaFaculty of Electronic and Computer Engineering, Universiti Teknikal Malaysia MelakaThis paper investigates the changes in the output of the piezoelectric cantilever arrays when connected in different configurations. In this research matching load resistance determined and optimum output was measured by connecting the piezoelectric cantilever arrays to resistance ranging from 10 Ω to 1 MΩ while excited by constant vibration source at frequency of 300 Hz and acceleration of 1-g level. The result shows that matching load resistance for one single piezoelectric cantilever is 13 KΩ. When two, three and four cantilevers are connected in series, the matching load resistance is 26 kΩ, 39 kΩ and 52 kΩ respectively. While in parallel connection, matching load resistance reduced to 6.5 kΩ, 4.5 kΩ and 3.5 kΩ for two, three, and four connected cantilevers respectively. In series configuration, the voltage output produced is much higher as compared to the piezoelectric cantilever arrays that are connected in parallel connection. The voltage output of the piezoelectric cantilever increased from 3.41V to 6.09V when it is connected in series configuration with same polarity. Whereas in term of power output, piezoelectric cantilever arrays in parallel configuration produce higher power output as compared to piezoelectric cantilever arrays in series connection. The maximum power increased from 272μW to 521μW when two cantilevers are connected in parallel configuration with same polarity.https://doi.org/10.1051/matecconf/201710808007
collection DOAJ
language English
format Article
sources DOAJ
author Jing Bong Yu
Leong Kok Swee
spellingShingle Jing Bong Yu
Leong Kok Swee
Power Optimization Configuration for Piezoelectric Cantilever Arrays
MATEC Web of Conferences
author_facet Jing Bong Yu
Leong Kok Swee
author_sort Jing Bong Yu
title Power Optimization Configuration for Piezoelectric Cantilever Arrays
title_short Power Optimization Configuration for Piezoelectric Cantilever Arrays
title_full Power Optimization Configuration for Piezoelectric Cantilever Arrays
title_fullStr Power Optimization Configuration for Piezoelectric Cantilever Arrays
title_full_unstemmed Power Optimization Configuration for Piezoelectric Cantilever Arrays
title_sort power optimization configuration for piezoelectric cantilever arrays
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2017-01-01
description This paper investigates the changes in the output of the piezoelectric cantilever arrays when connected in different configurations. In this research matching load resistance determined and optimum output was measured by connecting the piezoelectric cantilever arrays to resistance ranging from 10 Ω to 1 MΩ while excited by constant vibration source at frequency of 300 Hz and acceleration of 1-g level. The result shows that matching load resistance for one single piezoelectric cantilever is 13 KΩ. When two, three and four cantilevers are connected in series, the matching load resistance is 26 kΩ, 39 kΩ and 52 kΩ respectively. While in parallel connection, matching load resistance reduced to 6.5 kΩ, 4.5 kΩ and 3.5 kΩ for two, three, and four connected cantilevers respectively. In series configuration, the voltage output produced is much higher as compared to the piezoelectric cantilever arrays that are connected in parallel connection. The voltage output of the piezoelectric cantilever increased from 3.41V to 6.09V when it is connected in series configuration with same polarity. Whereas in term of power output, piezoelectric cantilever arrays in parallel configuration produce higher power output as compared to piezoelectric cantilever arrays in series connection. The maximum power increased from 272μW to 521μW when two cantilevers are connected in parallel configuration with same polarity.
url https://doi.org/10.1051/matecconf/201710808007
work_keys_str_mv AT jingbongyu poweroptimizationconfigurationforpiezoelectriccantileverarrays
AT leongkokswee poweroptimizationconfigurationforpiezoelectriccantileverarrays
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