Model of electromagnetic field effect on biological tissues.

The design of modern devices for extracorporeal magnetotherapy should be preceded by physical and mathematical modeling of all stages of the technology of the effect of magnetic fields on various types of body tissues, taking into account their dielectric properties. This is necessary to create an e...

Full description

Saved in:
Bibliographic Details
Main Authors: Р. V. Kamlach, D. S. Hroda, A. V. Churakov, V. I. Kamlach, V. М. Bondarik, S. I. Madveika, A. P. Klyuev
Format: Article
Language:Russian
Published: Educational institution «Belarusian State University of Informatics and Radioelectronics» 2020-12-01
Series:Doklady Belorusskogo gosudarstvennogo universiteta informatiki i radioèlektroniki
Subjects:
Online Access:https://doklady.bsuir.by/jour/article/view/2931
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849398536803713024
author Р. V. Kamlach
D. S. Hroda
A. V. Churakov
V. I. Kamlach
V. М. Bondarik
S. I. Madveika
A. P. Klyuev
author_facet Р. V. Kamlach
D. S. Hroda
A. V. Churakov
V. I. Kamlach
V. М. Bondarik
S. I. Madveika
A. P. Klyuev
author_sort Р. V. Kamlach
collection DOAJ
description The design of modern devices for extracorporeal magnetotherapy should be preceded by physical and mathematical modeling of all stages of the technology of the effect of magnetic fields on various types of body tissues, taking into account their dielectric properties. This is necessary to create an electromagnetic field with the necessary biotropic parameters. In this work, a mathematical model of the effect of electromagnetic field on biological tissues, such as muscles, skin and adipose tissue, is constructed. The mathematical model takes into account various parameters of biological tissue, such as electrical conductivity and relative dielectric constant. Based on the model, the parameters of the response in biological tissues (the amplitude of the response in the tissue and the maximum value of the current in the tissue) were calculated in the innovative Sim4Life 5.2 platform. To test the mathematical model, a laboratory model was used to measure the electrical characteristics of biological tissue. During the research, experiments were carried out with three biological samples: adipose tissue, muscle tissue and skin. The dependences of the response amplitude in biological samples on the output signal power are plotted. The results obtained characterize the use of the proposed operation algorithm in a complex based on the Sim4Life 5.2 platform and simulation of electromagnetic field with a biological object that is optimal for the creation and examination of technologies and devices for magnetotherapy and inductors of extracorporeal effects of magnetic field. This work will make it possible to familiarize a wider range of different experts with the capabilities of the platform not only for modeling new medical devices, but also for the examination of available and those already applied in healthcare.
format Article
id doaj-art-42f46fc4dc184c14a6035ab6fbc172f4
institution Kabale University
issn 1729-7648
language Russian
publishDate 2020-12-01
publisher Educational institution «Belarusian State University of Informatics and Radioelectronics»
record_format Article
series Doklady Belorusskogo gosudarstvennogo universiteta informatiki i radioèlektroniki
spelling doaj-art-42f46fc4dc184c14a6035ab6fbc172f42025-08-20T03:38:35ZrusEducational institution «Belarusian State University of Informatics and Radioelectronics»Doklady Belorusskogo gosudarstvennogo universiteta informatiki i radioèlektroniki1729-76482020-12-01188465210.35596/1729-7648-2020-18-8-46-521655Model of electromagnetic field effect on biological tissues.Р. V. Kamlach0D. S. Hroda1A. V. Churakov2V. I. Kamlach3V. М. Bondarik4S. I. Madveika5A. P. Klyuev6Belarusian State University of Informatics and RadioelectronicsUnitary enterprise “Scientific and technical center “LEMT” BelOMO”Belarusian State University of Informatics and RadioelectronicsBelarusian State University of Informatics and RadioelectronicsBelarusian State University of Informatics and RadioelectronicsBelarusian State University of Informatics and RadioelectronicsBelarusian State University of Informatics and RadioelectronicsThe design of modern devices for extracorporeal magnetotherapy should be preceded by physical and mathematical modeling of all stages of the technology of the effect of magnetic fields on various types of body tissues, taking into account their dielectric properties. This is necessary to create an electromagnetic field with the necessary biotropic parameters. In this work, a mathematical model of the effect of electromagnetic field on biological tissues, such as muscles, skin and adipose tissue, is constructed. The mathematical model takes into account various parameters of biological tissue, such as electrical conductivity and relative dielectric constant. Based on the model, the parameters of the response in biological tissues (the amplitude of the response in the tissue and the maximum value of the current in the tissue) were calculated in the innovative Sim4Life 5.2 platform. To test the mathematical model, a laboratory model was used to measure the electrical characteristics of biological tissue. During the research, experiments were carried out with three biological samples: adipose tissue, muscle tissue and skin. The dependences of the response amplitude in biological samples on the output signal power are plotted. The results obtained characterize the use of the proposed operation algorithm in a complex based on the Sim4Life 5.2 platform and simulation of electromagnetic field with a biological object that is optimal for the creation and examination of technologies and devices for magnetotherapy and inductors of extracorporeal effects of magnetic field. This work will make it possible to familiarize a wider range of different experts with the capabilities of the platform not only for modeling new medical devices, but also for the examination of available and those already applied in healthcare.https://doklady.bsuir.by/jour/article/view/2931magnetotherapyinductorbiological samplesimulation
spellingShingle Р. V. Kamlach
D. S. Hroda
A. V. Churakov
V. I. Kamlach
V. М. Bondarik
S. I. Madveika
A. P. Klyuev
Model of electromagnetic field effect on biological tissues.
Doklady Belorusskogo gosudarstvennogo universiteta informatiki i radioèlektroniki
magnetotherapy
inductor
biological sample
simulation
title Model of electromagnetic field effect on biological tissues.
title_full Model of electromagnetic field effect on biological tissues.
title_fullStr Model of electromagnetic field effect on biological tissues.
title_full_unstemmed Model of electromagnetic field effect on biological tissues.
title_short Model of electromagnetic field effect on biological tissues.
title_sort model of electromagnetic field effect on biological tissues
topic magnetotherapy
inductor
biological sample
simulation
url https://doklady.bsuir.by/jour/article/view/2931
work_keys_str_mv AT rvkamlach modelofelectromagneticfieldeffectonbiologicaltissues
AT dshroda modelofelectromagneticfieldeffectonbiologicaltissues
AT avchurakov modelofelectromagneticfieldeffectonbiologicaltissues
AT vikamlach modelofelectromagneticfieldeffectonbiologicaltissues
AT vmbondarik modelofelectromagneticfieldeffectonbiologicaltissues
AT simadveika modelofelectromagneticfieldeffectonbiologicaltissues
AT apklyuev modelofelectromagneticfieldeffectonbiologicaltissues