Electric field distributions of NMHA inside and outside of a human body phantom

In order to establish a communication link between a sensor inside of a human body to a receiver outside of the human body, electric field distribution performances of the antenna inside of the human body need to be clarified. A Normal Mode Helical Antenna (NMHA) is proposed as the antenna used for...

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Main Authors: Kamaruddin, Nur Amalina, Kamardin, Kamilia, Yamada, Yoshihide
Format: Conference or Workshop Item
Published: 2021
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Online Access:http://eprints.utm.my/id/eprint/95980/
http://dx.doi.org/10.1109/RFM50841.2020.9344777
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spelling my.utm.959802022-07-01T07:13:11Z http://eprints.utm.my/id/eprint/95980/ Electric field distributions of NMHA inside and outside of a human body phantom Kamaruddin, Nur Amalina Kamardin, Kamilia Yamada, Yoshihide Q Science (General) TA Engineering (General). Civil engineering (General) In order to establish a communication link between a sensor inside of a human body to a receiver outside of the human body, electric field distribution performances of the antenna inside of the human body need to be clarified. A Normal Mode Helical Antenna (NMHA) is proposed as the antenna used for this research for the purpose of using it as the antenna for Wireless Capsule Endoscopy (WCE). In this paper, the performances of NMHA which are self-resonant structures, input resistance (R-in) and efficiency (eta) are presented. The antenna is designed at frequency of 402 MHz. The designed NMHA is placed inside of human body phantom with permittivity (epsilon(r)) of 11.6 F/m that represents fat layer. The conductivity (sigma) of the phantom is from 0 to 1 S/m. The electric field distributions of NMHA inside the phantom are observed in details at sigma equals to 0, 0.3 and 1 S/m. From the electric field distributions, propagation loss of signal (L-z) from NMHA across the human body phantom can be estimated. Calculation of electric field degradation is also presented in this paper. A half-wavelength dipole antenna is then added to the NMHA model to act as receiver to check NMHA's signal strength. The result is presented as S-21. 2021 Conference or Workshop Item PeerReviewed Kamaruddin, Nur Amalina and Kamardin, Kamilia and Yamada, Yoshihide (2021) Electric field distributions of NMHA inside and outside of a human body phantom. In: IEEE International RF and Microwave Conference (RFM), 14 December 2020 - 16 December 2020, Kuala Lumpur, Malaysia. http://dx.doi.org/10.1109/RFM50841.2020.9344777
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic Q Science (General)
TA Engineering (General). Civil engineering (General)
spellingShingle Q Science (General)
TA Engineering (General). Civil engineering (General)
Kamaruddin, Nur Amalina
Kamardin, Kamilia
Yamada, Yoshihide
Electric field distributions of NMHA inside and outside of a human body phantom
description In order to establish a communication link between a sensor inside of a human body to a receiver outside of the human body, electric field distribution performances of the antenna inside of the human body need to be clarified. A Normal Mode Helical Antenna (NMHA) is proposed as the antenna used for this research for the purpose of using it as the antenna for Wireless Capsule Endoscopy (WCE). In this paper, the performances of NMHA which are self-resonant structures, input resistance (R-in) and efficiency (eta) are presented. The antenna is designed at frequency of 402 MHz. The designed NMHA is placed inside of human body phantom with permittivity (epsilon(r)) of 11.6 F/m that represents fat layer. The conductivity (sigma) of the phantom is from 0 to 1 S/m. The electric field distributions of NMHA inside the phantom are observed in details at sigma equals to 0, 0.3 and 1 S/m. From the electric field distributions, propagation loss of signal (L-z) from NMHA across the human body phantom can be estimated. Calculation of electric field degradation is also presented in this paper. A half-wavelength dipole antenna is then added to the NMHA model to act as receiver to check NMHA's signal strength. The result is presented as S-21.
format Conference or Workshop Item
author Kamaruddin, Nur Amalina
Kamardin, Kamilia
Yamada, Yoshihide
author_facet Kamaruddin, Nur Amalina
Kamardin, Kamilia
Yamada, Yoshihide
author_sort Kamaruddin, Nur Amalina
title Electric field distributions of NMHA inside and outside of a human body phantom
title_short Electric field distributions of NMHA inside and outside of a human body phantom
title_full Electric field distributions of NMHA inside and outside of a human body phantom
title_fullStr Electric field distributions of NMHA inside and outside of a human body phantom
title_full_unstemmed Electric field distributions of NMHA inside and outside of a human body phantom
title_sort electric field distributions of nmha inside and outside of a human body phantom
publishDate 2021
url http://eprints.utm.my/id/eprint/95980/
http://dx.doi.org/10.1109/RFM50841.2020.9344777
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score 13.188404