Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System

A low-cost 3D-printed frequency agile fluidic monopole antenna system is demonstrated to respond to the increasing demand for reconfigurable antennas, which can operate in a dynamic environment, in this paper. Antennas that can be reconfigured for different operating frequencies, polarizations, or r...

Full description

Bibliographic Details
Main Authors: Cristina Borda-Fortuny, Linyu Cai, Kin Fai Tong, Kai-Kit Wong
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8762117/
id doaj-07f69bfbbc6e48e8bfdd39ff9d2f6d4d
record_format Article
spelling doaj-07f69bfbbc6e48e8bfdd39ff9d2f6d4d2021-03-29T23:59:09ZengIEEEIEEE Access2169-35362019-01-017950589506410.1109/ACCESS.2019.29286838762117Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna SystemCristina Borda-Fortuny0https://orcid.org/0000-0002-0261-778XLinyu Cai1Kin Fai Tong2https://orcid.org/0000-0003-3913-0227Kai-Kit Wong3https://orcid.org/0000-0001-7521-0078Department of Electronic and Electrical Engineering, University College London, London, U.K.Department of Electronic and Electrical Engineering, University College London, London, U.K.Department of Electronic and Electrical Engineering, University College London, London, U.K.Department of Electronic and Electrical Engineering, University College London, London, U.K.A low-cost 3D-printed frequency agile fluidic monopole antenna system is demonstrated to respond to the increasing demand for reconfigurable antennas, which can operate in a dynamic environment, in this paper. Antennas that can be reconfigured for different operating frequencies, polarizations, or radiation patterns are attracting attention. Traditional reconfigurable antennas using a metallic radiating element with electronic switches are limited by their pre-defined physical geometries. As conductive fluid, either liquid metal or ionized fluid has no defined shape, so it is possible to create the desired shape of a fluidic antenna to support different wireless environments. The fabrication of the leakage-free containers for fluidic antennas needs special consideration, and stereo-lithography-based 3D-printing technology is a possible option to support the fabrication. Moreover, researchers will have higher design freedom and accuracy to create new container shapes for fluidic antennas. The fluidic monopole antenna proposed is coupling-fed by a ring geometry for separating the electrical and mechanical structures; such an approach enables individual optimization and minimizes mutual disturbances in the system. A parametric study of the proposed coupling-feed geometry and the experimental verification of the antenna prototypes have been performed. Reasonable frequency agility from 3.2 to 5 GHz has been demonstrated, and the peak efficiency is about 80%. A maximum gain of 3.8 dBi is obtained. The radiation patterns of the antenna are stable across the operating bandwidth. The proposed antenna could be useful for the applications in the recent 5G mid-bands operations.https://ieeexplore.ieee.org/document/8762117/3D-printingantennasclosed loop systemfluidic antennasfluid control methodsmonopole antennas
collection DOAJ
language English
format Article
sources DOAJ
author Cristina Borda-Fortuny
Linyu Cai
Kin Fai Tong
Kai-Kit Wong
spellingShingle Cristina Borda-Fortuny
Linyu Cai
Kin Fai Tong
Kai-Kit Wong
Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
IEEE Access
3D-printing
antennas
closed loop system
fluidic antennas
fluid control methods
monopole antennas
author_facet Cristina Borda-Fortuny
Linyu Cai
Kin Fai Tong
Kai-Kit Wong
author_sort Cristina Borda-Fortuny
title Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
title_short Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
title_full Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
title_fullStr Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
title_full_unstemmed Low-Cost 3D-Printed Coupling-Fed Frequency Agile Fluidic Monopole Antenna System
title_sort low-cost 3d-printed coupling-fed frequency agile fluidic monopole antenna system
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description A low-cost 3D-printed frequency agile fluidic monopole antenna system is demonstrated to respond to the increasing demand for reconfigurable antennas, which can operate in a dynamic environment, in this paper. Antennas that can be reconfigured for different operating frequencies, polarizations, or radiation patterns are attracting attention. Traditional reconfigurable antennas using a metallic radiating element with electronic switches are limited by their pre-defined physical geometries. As conductive fluid, either liquid metal or ionized fluid has no defined shape, so it is possible to create the desired shape of a fluidic antenna to support different wireless environments. The fabrication of the leakage-free containers for fluidic antennas needs special consideration, and stereo-lithography-based 3D-printing technology is a possible option to support the fabrication. Moreover, researchers will have higher design freedom and accuracy to create new container shapes for fluidic antennas. The fluidic monopole antenna proposed is coupling-fed by a ring geometry for separating the electrical and mechanical structures; such an approach enables individual optimization and minimizes mutual disturbances in the system. A parametric study of the proposed coupling-feed geometry and the experimental verification of the antenna prototypes have been performed. Reasonable frequency agility from 3.2 to 5 GHz has been demonstrated, and the peak efficiency is about 80%. A maximum gain of 3.8 dBi is obtained. The radiation patterns of the antenna are stable across the operating bandwidth. The proposed antenna could be useful for the applications in the recent 5G mid-bands operations.
topic 3D-printing
antennas
closed loop system
fluidic antennas
fluid control methods
monopole antennas
url https://ieeexplore.ieee.org/document/8762117/
work_keys_str_mv AT cristinabordafortuny lowcost3dprintedcouplingfedfrequencyagilefluidicmonopoleantennasystem
AT linyucai lowcost3dprintedcouplingfedfrequencyagilefluidicmonopoleantennasystem
AT kinfaitong lowcost3dprintedcouplingfedfrequencyagilefluidicmonopoleantennasystem
AT kaikitwong lowcost3dprintedcouplingfedfrequencyagilefluidicmonopoleantennasystem
_version_ 1724188730974011392