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Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps

The physiology of the patient can be reflected by various data. Serious games, using an intelligent combination, could be based on this data to adjust to the specificities of the patient. Rehabilitation would therefore be personalized to the patient. This smart suit would use dry electrodes in order...

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Autores principales: Peixoto, Margaux, Moreno, Marie-Valérie, Khider, Nassim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347085/
https://www.ncbi.nlm.nih.gov/pubmed/34372435
http://dx.doi.org/10.3390/s21155195
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author Peixoto, Margaux
Moreno, Marie-Valérie
Khider, Nassim
author_facet Peixoto, Margaux
Moreno, Marie-Valérie
Khider, Nassim
author_sort Peixoto, Margaux
collection PubMed
description The physiology of the patient can be reflected by various data. Serious games, using an intelligent combination, could be based on this data to adjust to the specificities of the patient. Rehabilitation would therefore be personalized to the patient. This smart suit would use dry electrodes in order to be easily usable. Before performing dry electrode validation tests on a population, it is necessary to perform preliminary tests on a phantom. Agar-Agar (AA) gel, combined with NaCl and graphite which directly impact the resistivity and reactance values of the phantom, are generally used. Depending on the part of the body simulated by the phantom, it is necessary to adapt the concentrations of NaCl and graphite in order to obtain values of physiological reactance and resistance. The anisotropy of a muscle must also be considered. Different concentrations of NaCl and graphite have been tested in order to present charts linking the concentrations to the resistance and reactance values of the AA phantom. Electrical properties similar to those of human quadriceps are achieved at a concentration of 7 g/L of NaCl and 60 g/L of graphite. These values can be used as a conversion table to develop an AA phantom with electrical properties similar to different muscles. Furthermore, an AA phantom has an anisotropy of 0° and 90°. This anisotropy corresponds to a human quadriceps, where 0° is the direction of the muscle fiber. This will allow us to study and characterize the behavior of the electrodes on an anisotropic model. Thus it can be used as a first test phase for dry electrodes in order to propose the most suitable conditions for a connected garment application.
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spelling pubmed-83470852021-08-08 Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps Peixoto, Margaux Moreno, Marie-Valérie Khider, Nassim Sensors (Basel) Article The physiology of the patient can be reflected by various data. Serious games, using an intelligent combination, could be based on this data to adjust to the specificities of the patient. Rehabilitation would therefore be personalized to the patient. This smart suit would use dry electrodes in order to be easily usable. Before performing dry electrode validation tests on a population, it is necessary to perform preliminary tests on a phantom. Agar-Agar (AA) gel, combined with NaCl and graphite which directly impact the resistivity and reactance values of the phantom, are generally used. Depending on the part of the body simulated by the phantom, it is necessary to adapt the concentrations of NaCl and graphite in order to obtain values of physiological reactance and resistance. The anisotropy of a muscle must also be considered. Different concentrations of NaCl and graphite have been tested in order to present charts linking the concentrations to the resistance and reactance values of the AA phantom. Electrical properties similar to those of human quadriceps are achieved at a concentration of 7 g/L of NaCl and 60 g/L of graphite. These values can be used as a conversion table to develop an AA phantom with electrical properties similar to different muscles. Furthermore, an AA phantom has an anisotropy of 0° and 90°. This anisotropy corresponds to a human quadriceps, where 0° is the direction of the muscle fiber. This will allow us to study and characterize the behavior of the electrodes on an anisotropic model. Thus it can be used as a first test phase for dry electrodes in order to propose the most suitable conditions for a connected garment application. MDPI 2021-07-31 /pmc/articles/PMC8347085/ /pubmed/34372435 http://dx.doi.org/10.3390/s21155195 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Peixoto, Margaux
Moreno, Marie-Valérie
Khider, Nassim
Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title_full Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title_fullStr Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title_full_unstemmed Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title_short Conception of a Phantom in Agar-Agar Gel with the Same Bio-Impedance Properties as Human Quadriceps
title_sort conception of a phantom in agar-agar gel with the same bio-impedance properties as human quadriceps
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347085/
https://www.ncbi.nlm.nih.gov/pubmed/34372435
http://dx.doi.org/10.3390/s21155195
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