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Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates

This paper describes the route, from simulations toward experiments, for optimizing the magnetoelectric (ME) geometries for vortex magnetic field sensors. The research is performed on the base of the Metglas/Piezoelectric (PZT) laminates in both open and closed magnetic circuit (OMC and CMC) geometr...

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Autores principales: Huong Giang, Do Thi, Tam, Ho Anh, Ngoc Khanh, Vu Thi, Vinh, Nguyen Trong, Anh Tuan, Phung, Van Tuan, Nguyen, Thi Ngoc, Nguyen, Duc, Nguyen Huu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7285217/
https://www.ncbi.nlm.nih.gov/pubmed/32429105
http://dx.doi.org/10.3390/s20102810
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author Huong Giang, Do Thi
Tam, Ho Anh
Ngoc Khanh, Vu Thi
Vinh, Nguyen Trong
Anh Tuan, Phung
Van Tuan, Nguyen
Thi Ngoc, Nguyen
Duc, Nguyen Huu
author_facet Huong Giang, Do Thi
Tam, Ho Anh
Ngoc Khanh, Vu Thi
Vinh, Nguyen Trong
Anh Tuan, Phung
Van Tuan, Nguyen
Thi Ngoc, Nguyen
Duc, Nguyen Huu
author_sort Huong Giang, Do Thi
collection PubMed
description This paper describes the route, from simulations toward experiments, for optimizing the magnetoelectric (ME) geometries for vortex magnetic field sensors. The research is performed on the base of the Metglas/Piezoelectric (PZT) laminates in both open and closed magnetic circuit (OMC and CMC) geometries with different widths (W), lengths (L), and diameters (D). Among these geometries, the CMC laminates demonstrate advantages not only in their magnetic flux distribution, but also in their sensitivity and in their independence of the position of the vortex center. In addition, the ME voltage signal is found to be enhanced by increasing the magnetostrictive volume fraction. Optimal issues are incorporated to realize a CMC-based ME double sandwich current sensor in the ring shape with D × W = 6 mm × 1.5 mm and four layers of Metglas. At the resonant frequency of 174.4 kHz, this sensor exhibits the record sensitivity of 5.426 V/A as compared to variety of devices such as the CMC ME sensor family, fluxgate, magnetoresistive, and Hall-effect-based devices. It opens a potential to commercialize a new generation of ME-based current and (or) vortex magnetic sensors.
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spelling pubmed-72852172020-06-17 Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates Huong Giang, Do Thi Tam, Ho Anh Ngoc Khanh, Vu Thi Vinh, Nguyen Trong Anh Tuan, Phung Van Tuan, Nguyen Thi Ngoc, Nguyen Duc, Nguyen Huu Sensors (Basel) Article This paper describes the route, from simulations toward experiments, for optimizing the magnetoelectric (ME) geometries for vortex magnetic field sensors. The research is performed on the base of the Metglas/Piezoelectric (PZT) laminates in both open and closed magnetic circuit (OMC and CMC) geometries with different widths (W), lengths (L), and diameters (D). Among these geometries, the CMC laminates demonstrate advantages not only in their magnetic flux distribution, but also in their sensitivity and in their independence of the position of the vortex center. In addition, the ME voltage signal is found to be enhanced by increasing the magnetostrictive volume fraction. Optimal issues are incorporated to realize a CMC-based ME double sandwich current sensor in the ring shape with D × W = 6 mm × 1.5 mm and four layers of Metglas. At the resonant frequency of 174.4 kHz, this sensor exhibits the record sensitivity of 5.426 V/A as compared to variety of devices such as the CMC ME sensor family, fluxgate, magnetoresistive, and Hall-effect-based devices. It opens a potential to commercialize a new generation of ME-based current and (or) vortex magnetic sensors. MDPI 2020-05-15 /pmc/articles/PMC7285217/ /pubmed/32429105 http://dx.doi.org/10.3390/s20102810 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Huong Giang, Do Thi
Tam, Ho Anh
Ngoc Khanh, Vu Thi
Vinh, Nguyen Trong
Anh Tuan, Phung
Van Tuan, Nguyen
Thi Ngoc, Nguyen
Duc, Nguyen Huu
Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title_full Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title_fullStr Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title_full_unstemmed Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title_short Magnetoelectric Vortex Magnetic Field Sensors Based on the Metglas/PZT Laminates
title_sort magnetoelectric vortex magnetic field sensors based on the metglas/pzt laminates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7285217/
https://www.ncbi.nlm.nih.gov/pubmed/32429105
http://dx.doi.org/10.3390/s20102810
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