A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head

This paper presents a novel cellular handset design with a bottom-mounted short loaded-whip antenna. This new handset design is modeled and simulated using a finite difference time-domain (FDTD)-based platform SEMCAD. The proposed handset is based on a current commercially available bar-phone ty...

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Main Authors: Salah I. Al-Mously, Marai M. Abousetta
Format: Article
Language:English
Published: Hindawi Limited 2008-01-01
Series:International Journal of Antennas and Propagation
Online Access:http://dx.doi.org/10.1155/2008/642572
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spelling doaj-1e71b9e5d8b642e2b51ec73d85ceb7ac2020-11-25T01:03:29ZengHindawi LimitedInternational Journal of Antennas and Propagation1687-58691687-58772008-01-01200810.1155/2008/642572642572A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human HeadSalah I. Al-Mously0Marai M. Abousetta1Department of Electrical and Electronics Engineering, School of Applied Sciences and Engineering, Academy of Graduate Studies, P.O. Box 79031, Janzoor, Tripoli, LibyaDepartment of Electrical and Electronics Engineering, School of Applied Sciences and Engineering, Academy of Graduate Studies, P.O. Box 79031, Janzoor, Tripoli, LibyaThis paper presents a novel cellular handset design with a bottom-mounted short loaded-whip antenna. This new handset design is modeled and simulated using a finite difference time-domain (FDTD)-based platform SEMCAD. The proposed handset is based on a current commercially available bar-phone type with a curvature shape, keypad positioned above the screen, and top-mounted antenna. The specific absorption rates (SARs) are determined computationally in the specific anthropomorphic mannequin (SAM) and anatomically correct model of a human head when exposed to the EM-field radiation of the proposed cellular handset and the handset with top-mounted antenna. The two cellular handsets are simulated to operate at both GSM standards, 900 MHz as well as 1800 MHz, having different antenna dimensions and intput power of 0.6 W and 0.125 W, respectively. The proposed human hand holding the two handset models is a semirealistic hand model consists of three tissues: skin, muscle, and bone. The simulations are conducted with handset positions based on the IEEE standard 1528-2003. The results show that the proposed handset has a significant improvement of antenna efficiency when it is hand-held close to head, as compared with the handset of top-mounted antenna. Also, the results show that a significant reduction of the induced SAR in the human head-tissues can be achieved with the proposed handset.http://dx.doi.org/10.1155/2008/642572
collection DOAJ
language English
format Article
sources DOAJ
author Salah I. Al-Mously
Marai M. Abousetta
spellingShingle Salah I. Al-Mously
Marai M. Abousetta
A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
International Journal of Antennas and Propagation
author_facet Salah I. Al-Mously
Marai M. Abousetta
author_sort Salah I. Al-Mously
title A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
title_short A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
title_full A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
title_fullStr A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
title_full_unstemmed A Novel Cellular Handset Design for an Enhanced Antenna Performance and a Reduced SAR in the Human Head
title_sort novel cellular handset design for an enhanced antenna performance and a reduced sar in the human head
publisher Hindawi Limited
series International Journal of Antennas and Propagation
issn 1687-5869
1687-5877
publishDate 2008-01-01
description This paper presents a novel cellular handset design with a bottom-mounted short loaded-whip antenna. This new handset design is modeled and simulated using a finite difference time-domain (FDTD)-based platform SEMCAD. The proposed handset is based on a current commercially available bar-phone type with a curvature shape, keypad positioned above the screen, and top-mounted antenna. The specific absorption rates (SARs) are determined computationally in the specific anthropomorphic mannequin (SAM) and anatomically correct model of a human head when exposed to the EM-field radiation of the proposed cellular handset and the handset with top-mounted antenna. The two cellular handsets are simulated to operate at both GSM standards, 900 MHz as well as 1800 MHz, having different antenna dimensions and intput power of 0.6 W and 0.125 W, respectively. The proposed human hand holding the two handset models is a semirealistic hand model consists of three tissues: skin, muscle, and bone. The simulations are conducted with handset positions based on the IEEE standard 1528-2003. The results show that the proposed handset has a significant improvement of antenna efficiency when it is hand-held close to head, as compared with the handset of top-mounted antenna. Also, the results show that a significant reduction of the induced SAR in the human head-tissues can be achieved with the proposed handset.
url http://dx.doi.org/10.1155/2008/642572
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