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Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications

The impact of the electromagnetic waves (EM) on human neurons (HN) has been under investigation for decades, in efforts to understand the impact of cell phones (radiation) on human health, or radiation absorption by HN for medical diagnosis and treatment. Research issues including the wave frequency...

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Autores principales: Perez, Felipe, Millholland, Gilbert, Peddinti, Seshasai Vamsi Krishna, Thella, Ashok Kumar, Rizkalla, James, Salama, Paul, Rizkalla, Maher, Morisaki, Jorge, Rizkalla, Maher E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5014390/
https://www.ncbi.nlm.nih.gov/pubmed/27617054
http://dx.doi.org/10.4236/jbise.2016.99039
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author Perez, Felipe
Millholland, Gilbert
Peddinti, Seshasai Vamsi Krishna
Thella, Ashok Kumar
Rizkalla, James
Salama, Paul
Rizkalla, Maher
Morisaki, Jorge
Rizkalla, Maher E.
author_facet Perez, Felipe
Millholland, Gilbert
Peddinti, Seshasai Vamsi Krishna
Thella, Ashok Kumar
Rizkalla, James
Salama, Paul
Rizkalla, Maher
Morisaki, Jorge
Rizkalla, Maher E.
author_sort Perez, Felipe
collection PubMed
description The impact of the electromagnetic waves (EM) on human neurons (HN) has been under investigation for decades, in efforts to understand the impact of cell phones (radiation) on human health, or radiation absorption by HN for medical diagnosis and treatment. Research issues including the wave frequency, power intensity, reflections and scattering, and penetration depths are of important considerations to be incorporated into the research study. In this study, computer simulation for the EM exposure to HN was studied for the purpose of determining the upper limits of the electric and magnetic field intensities, power consumption, reflections and transmissions, and the change in temperature resulting from the power absorption by human neurons. Both high frequency structural simulators (HFSS) from ANSYS software, and COMSOL multi-physics were used for the simulation of the EM transmissions and reflections, and the temperature profile within the cells, respectively. For the temperature profile estimation, the study considers an electrical source of 0.5 watt input power, 64 MHz. The EM simulation was looking into the uniformity of the fields within the sample cells. The size of the waveguide was set to be appropriate for a small animal model to be conducted in the future. The incident power was fully transmitted throughout the waveguide, and less than 1% reflections were observed from the simulation. The minimum reflected power near the sample under investigation was found to be with negligible reflected field strengths. The temperature profile resulting from the COMSOL simulation was found to be near 0.25 m°K, indicating no change in temperature on the neuro cells under the EM exposure. The paper details the simulation results for the EM response determined by HFSS, and temperature profile simulated by COMSOL.
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spelling pubmed-50143902016-09-07 Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications Perez, Felipe Millholland, Gilbert Peddinti, Seshasai Vamsi Krishna Thella, Ashok Kumar Rizkalla, James Salama, Paul Rizkalla, Maher Morisaki, Jorge Rizkalla, Maher E. J Biomed Sci Eng Article The impact of the electromagnetic waves (EM) on human neurons (HN) has been under investigation for decades, in efforts to understand the impact of cell phones (radiation) on human health, or radiation absorption by HN for medical diagnosis and treatment. Research issues including the wave frequency, power intensity, reflections and scattering, and penetration depths are of important considerations to be incorporated into the research study. In this study, computer simulation for the EM exposure to HN was studied for the purpose of determining the upper limits of the electric and magnetic field intensities, power consumption, reflections and transmissions, and the change in temperature resulting from the power absorption by human neurons. Both high frequency structural simulators (HFSS) from ANSYS software, and COMSOL multi-physics were used for the simulation of the EM transmissions and reflections, and the temperature profile within the cells, respectively. For the temperature profile estimation, the study considers an electrical source of 0.5 watt input power, 64 MHz. The EM simulation was looking into the uniformity of the fields within the sample cells. The size of the waveguide was set to be appropriate for a small animal model to be conducted in the future. The incident power was fully transmitted throughout the waveguide, and less than 1% reflections were observed from the simulation. The minimum reflected power near the sample under investigation was found to be with negligible reflected field strengths. The temperature profile resulting from the COMSOL simulation was found to be near 0.25 m°K, indicating no change in temperature on the neuro cells under the EM exposure. The paper details the simulation results for the EM response determined by HFSS, and temperature profile simulated by COMSOL. 2016-08-12 2016-08 /pmc/articles/PMC5014390/ /pubmed/27617054 http://dx.doi.org/10.4236/jbise.2016.99039 Text en This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Perez, Felipe
Millholland, Gilbert
Peddinti, Seshasai Vamsi Krishna
Thella, Ashok Kumar
Rizkalla, James
Salama, Paul
Rizkalla, Maher
Morisaki, Jorge
Rizkalla, Maher E.
Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title_full Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title_fullStr Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title_full_unstemmed Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title_short Electromagnetic and Thermal Simulations of Human Neurons for SAR Applications
title_sort electromagnetic and thermal simulations of human neurons for sar applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5014390/
https://www.ncbi.nlm.nih.gov/pubmed/27617054
http://dx.doi.org/10.4236/jbise.2016.99039
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