Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application

In recent years, the development of healthcare monitoring devices requires high performance and compact in-body sensor antennas. A normal-mode helical antenna (NMHA) is one of the most suitable candidates that meets the criteria, especially with the ability to achieve high efficiency when the antenn...

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Main Authors: Zainudin, Norsiha, Latef, Tarik Abdul, Aridas, Narendra Kumar, Yamada, Yoshihide, Kamardin, Kamilia, Abd Rahman, Nurul Huda
Format: Article
Published: MDPI 2020
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Online Access:http://eprints.um.edu.my/24571/
https://doi.org/10.3390/s20040958
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spelling my.um.eprints.245712020-06-03T02:37:44Z http://eprints.um.edu.my/24571/ Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application Zainudin, Norsiha Latef, Tarik Abdul Aridas, Narendra Kumar Yamada, Yoshihide Kamardin, Kamilia Abd Rahman, Nurul Huda TK Electrical engineering. Electronics Nuclear engineering In recent years, the development of healthcare monitoring devices requires high performance and compact in-body sensor antennas. A normal-mode helical antenna (NMHA) is one of the most suitable candidates that meets the criteria, especially with the ability to achieve high efficiency when the antenna structure is in self-resonant mode. It was reported that when the antenna was placed in a human body, the antenna efficiency was decreased due to the increase of its input resistance (Rin). However, the reason for Rin increase was not clarified. In this paper, the increase of Rin is ensured through experiments and the physical reasons are validated through electromagnetic simulations. In the simulation, the Rin is calculated by placing the NMHA inside a human’s stomach, skin and fat. The dependency of Rin to conductivity (σ) is significant. Through current distribution calculation, it is verified that the reason of the increase in Rin is due to the decrease of antenna current. The effects of Rin to bandwidth (BW) and electrical field are also numerically clarified. Furthermore, by using the fabricated human body phantom, the measured Rin and bandwidth are also obtained. From the good agreement between the measured and simulated results, the condition of Rin increment is clarified. © 2020 by the authors. Licensee MDPI, Basel, Switzerland. MDPI 2020 Article PeerReviewed Zainudin, Norsiha and Latef, Tarik Abdul and Aridas, Narendra Kumar and Yamada, Yoshihide and Kamardin, Kamilia and Abd Rahman, Nurul Huda (2020) Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application. Sensors, 20 (4). p. 958. ISSN 1424-8220 https://doi.org/10.3390/s20040958 doi:10.3390/s20040958
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Zainudin, Norsiha
Latef, Tarik Abdul
Aridas, Narendra Kumar
Yamada, Yoshihide
Kamardin, Kamilia
Abd Rahman, Nurul Huda
Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
description In recent years, the development of healthcare monitoring devices requires high performance and compact in-body sensor antennas. A normal-mode helical antenna (NMHA) is one of the most suitable candidates that meets the criteria, especially with the ability to achieve high efficiency when the antenna structure is in self-resonant mode. It was reported that when the antenna was placed in a human body, the antenna efficiency was decreased due to the increase of its input resistance (Rin). However, the reason for Rin increase was not clarified. In this paper, the increase of Rin is ensured through experiments and the physical reasons are validated through electromagnetic simulations. In the simulation, the Rin is calculated by placing the NMHA inside a human’s stomach, skin and fat. The dependency of Rin to conductivity (σ) is significant. Through current distribution calculation, it is verified that the reason of the increase in Rin is due to the decrease of antenna current. The effects of Rin to bandwidth (BW) and electrical field are also numerically clarified. Furthermore, by using the fabricated human body phantom, the measured Rin and bandwidth are also obtained. From the good agreement between the measured and simulated results, the condition of Rin increment is clarified. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.
format Article
author Zainudin, Norsiha
Latef, Tarik Abdul
Aridas, Narendra Kumar
Yamada, Yoshihide
Kamardin, Kamilia
Abd Rahman, Nurul Huda
author_facet Zainudin, Norsiha
Latef, Tarik Abdul
Aridas, Narendra Kumar
Yamada, Yoshihide
Kamardin, Kamilia
Abd Rahman, Nurul Huda
author_sort Zainudin, Norsiha
title Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
title_short Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
title_full Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
title_fullStr Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
title_full_unstemmed Increase of Input Resistance of a Normal-Mode Helical Antenna (NMHA) in Human Body Application
title_sort increase of input resistance of a normal-mode helical antenna (nmha) in human body application
publisher MDPI
publishDate 2020
url http://eprints.um.edu.my/24571/
https://doi.org/10.3390/s20040958
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score 13.160551