2020
DOI: 10.5109/4102508
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Study on the Induced Voltage in Piezoelectric Smart Material (PZT) Using ANSYS Electric & Fuzzy Logic

Abstract: The objective of this study is to do simulation for the prospective of energy harvesting analysis of piezoelectrical smart materials through ANSYS Electric and MATLAB Fuzzy logic. It is to be determined that how much potential this PZT system has for the induced potential difference which is then further transformed into energy by voltage converter system. The voltage obtained from PZT system through both simulation 0.0050 V (ANSYS) and 0.00556 V (Fuzzy) is very much enough for charging any type of battery thr… Show more

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Cited by 5 publications
(5 citation statements)
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References 12 publications
(15 reference statements)
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“…ANSYS is a powerful tool for real-time simulation. Numerous researchers have used ANSYS software for simulation before production [16][17][18][19][20][21][22][23][24][25][26][27][28][29][30]. This work evaluates the velocity and temperature using the heat exchanger's ANSYS fluid flow (fluent) simulation.…”
Section: Ansys Simulationmentioning
confidence: 99%
“…ANSYS is a powerful tool for real-time simulation. Numerous researchers have used ANSYS software for simulation before production [16][17][18][19][20][21][22][23][24][25][26][27][28][29][30]. This work evaluates the velocity and temperature using the heat exchanger's ANSYS fluid flow (fluent) simulation.…”
Section: Ansys Simulationmentioning
confidence: 99%
“…Many stage junctions for electronic packaging in these microchannels were first proposed by . Utilizing computational fluid dynamics (CFD) in the ANSYS 182,183) , it was possible to numerically analyze the three-dimensional streamline flow transference of heat with these junctions 78) . The complexity of the focusing behavior of sphere-shaped particles with the aspect ratio for a wide range of Re in these microchannels was investigated by Liu et al (2014).…”
Section: Straight Microchannelsmentioning
confidence: 99%
“…Owing to the superior properties of ZnO, the structural and optical properties of ZnO can be altered by doping it with other materials. The group II elements, including calcium, magnesium, strontium, and barium, are considered the most conductive materials that can be easily incorporated into the atomic structure of ZnO, resulting in altered structural and optical properties, including the grain size and band-gap, of ZnO structures produced as a result of doping (Sheikh et al, 2013;Afzal et al, 2020;Baig et al, 2020;Sarwar et al, 2021). Adding second group element doping in ZnO nanostructures results in the alternation of the band gap as well as the structural morphology of ZnO nanostructures (Mahdhi et al, 2018;Sarwar and Ashraf, 2020;Tayyaba et al, 2020).…”
Section: Introductionmentioning
confidence: 99%