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Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays

This work presents the design and fabrication of two multi-element structurally embedded vascular antennas (SEVAs). These are achieved through advances in additively manufactured sacrificial materials and demonstrate the ability to embed vascular microchannels in both planar and complex-curved epoxy...

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Autores principales: Bal, Amrita, Baur, Jeffery W., Hartl, Darren J., Frank, Geoffrey J., Gibson, Thao, Pan, Hong, Huff, Gregory H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7961683/
https://www.ncbi.nlm.nih.gov/pubmed/33806364
http://dx.doi.org/10.3390/s21051764
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author Bal, Amrita
Baur, Jeffery W.
Hartl, Darren J.
Frank, Geoffrey J.
Gibson, Thao
Pan, Hong
Huff, Gregory H.
author_facet Bal, Amrita
Baur, Jeffery W.
Hartl, Darren J.
Frank, Geoffrey J.
Gibson, Thao
Pan, Hong
Huff, Gregory H.
author_sort Bal, Amrita
collection PubMed
description This work presents the design and fabrication of two multi-element structurally embedded vascular antennas (SEVAs). These are achieved through advances in additively manufactured sacrificial materials and demonstrate the ability to embed vascular microchannels in both planar and complex-curved epoxy-filled quartz fiber structural composite panels. Frequency-reconfigurable antennas are formed by these structures through the pressure-driven transport of liquid metal through the embedded microchannels. The planar multi-layer topology examines the ability to fabricate two co-located radiating structures separated by a single ply of quartz fabric within the composite layup. The multi-element linear array topology composed of microchannels embedded on to a single-layer are used to demonstrate the ability to conformally-integrate these channels into a complex curved surface that mimics an array of antennas on the leading edge of an Unmanned Aerial Vehicle (UAV). A parallel-strip antipodal dipole feed structure provides excitation and serves as the interface for fluid displacement within the microchannels to facilitate reconfiguration. The nominal design of the SEVAs achieve over a decade of frequency reconfiguration with respect to the fundamental dipole mode of the antenna. Experimental and predicted results demonstrate the operation for canonical states of the antennas. Additional results for the array topology demonstrate beam steering and contiguous operation of interconnected elements in the multi-element structure.
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spelling pubmed-79616832021-03-17 Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays Bal, Amrita Baur, Jeffery W. Hartl, Darren J. Frank, Geoffrey J. Gibson, Thao Pan, Hong Huff, Gregory H. Sensors (Basel) Article This work presents the design and fabrication of two multi-element structurally embedded vascular antennas (SEVAs). These are achieved through advances in additively manufactured sacrificial materials and demonstrate the ability to embed vascular microchannels in both planar and complex-curved epoxy-filled quartz fiber structural composite panels. Frequency-reconfigurable antennas are formed by these structures through the pressure-driven transport of liquid metal through the embedded microchannels. The planar multi-layer topology examines the ability to fabricate two co-located radiating structures separated by a single ply of quartz fabric within the composite layup. The multi-element linear array topology composed of microchannels embedded on to a single-layer are used to demonstrate the ability to conformally-integrate these channels into a complex curved surface that mimics an array of antennas on the leading edge of an Unmanned Aerial Vehicle (UAV). A parallel-strip antipodal dipole feed structure provides excitation and serves as the interface for fluid displacement within the microchannels to facilitate reconfiguration. The nominal design of the SEVAs achieve over a decade of frequency reconfiguration with respect to the fundamental dipole mode of the antenna. Experimental and predicted results demonstrate the operation for canonical states of the antennas. Additional results for the array topology demonstrate beam steering and contiguous operation of interconnected elements in the multi-element structure. MDPI 2021-03-04 /pmc/articles/PMC7961683/ /pubmed/33806364 http://dx.doi.org/10.3390/s21051764 Text en © 2021 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
Bal, Amrita
Baur, Jeffery W.
Hartl, Darren J.
Frank, Geoffrey J.
Gibson, Thao
Pan, Hong
Huff, Gregory H.
Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title_full Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title_fullStr Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title_full_unstemmed Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title_short Multi-Layer and Conformally Integrated Structurally Embedded Vascular Antenna (SEVA) Arrays
title_sort multi-layer and conformally integrated structurally embedded vascular antenna (seva) arrays
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7961683/
https://www.ncbi.nlm.nih.gov/pubmed/33806364
http://dx.doi.org/10.3390/s21051764
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