modeling human body using four-pole debye model in piecewise linear recursive convolution fdtd method for the sar calculation in the case of vehicular antenna

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ID: 149292
2018
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Ranked #40 of 301 articles by views in american journal of physiology endocrinology and metabolism

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Abstract
We propose an efficient finite difference time domain (FDTD) method based on the piecewise linear recursive convolution (PLRC) technique to evaluate the human body exposure to electromagnetic (EM) radiation. The source of radiation considered in this study is a high-power antenna, mounted on a military vehicle, covering a broad band of frequency (100 MHz–3 GHz). The simulation is carried out using a nonhomogeneous human body model which takes into consideration most of the internal body tissues. The human tissues are modeled by a four-pole Debye model which is derived from experimental data by using particle swarm optimization (PSO). The human exposure to EM radiation is evaluated by computing the local and whole-body average specific absorption rate (SAR) for each occupant. The higher in-tissue electric field intensity points are localized, and the SAR values are compared with the crew safety standard recommendations. The accuracy of the proposed PLRC-FDTD approach and the matching of the Debye model with the experimental data are verified in this study.
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guellab2018internationalmodeling Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors ;Ammar Guellab;Qun Wu
Journal american journal of physiology endocrinology and metabolism
Year 2018
DOI
10.1155/2018/2969237
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