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Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor

A low-cost signal processing circuit developed to measure and drive a heat dissipation soil matric potential sensor based on a single thermosensitive resistor is demonstrated. The [Formula: see text] has a high thermal coefficient, from [Formula: see text] C in the 20 to 25 [Formula: see text] C to...

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Autores principales: Morais, Flávio, Carvalhaes-Dias, Pedro, Zhang, Yu, Cabot, Andreu, Flosi, Fábio S., Duarte, Luis Caparroz, Dos Santos, Adelson, Dias, José A. Siqueira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7924832/
https://www.ncbi.nlm.nih.gov/pubmed/33669964
http://dx.doi.org/10.3390/s21041490
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author Morais, Flávio
Carvalhaes-Dias, Pedro
Zhang, Yu
Cabot, Andreu
Flosi, Fábio S.
Duarte, Luis Caparroz
Dos Santos, Adelson
Dias, José A. Siqueira
author_facet Morais, Flávio
Carvalhaes-Dias, Pedro
Zhang, Yu
Cabot, Andreu
Flosi, Fábio S.
Duarte, Luis Caparroz
Dos Santos, Adelson
Dias, José A. Siqueira
author_sort Morais, Flávio
collection PubMed
description A low-cost signal processing circuit developed to measure and drive a heat dissipation soil matric potential sensor based on a single thermosensitive resistor is demonstrated. The [Formula: see text] has a high thermal coefficient, from [Formula: see text] C in the 20 to 25 [Formula: see text] C to [Formula: see text] C in the 20 to 25 [Formula: see text] C. The [Formula: see text] thermosensitive resistor is encapsulated with a porous gypsum block and is used as both the heating and temperature sensing element. To control the power dissipated on the thermosensitive resistor and keep it constant during the heat pulse, a mixed analogue/digital circuit is used. The developed control circuit is able to maintain the dissipated power at [Formula: see text] mW when the resistor changes from [Formula: see text] to [Formula: see text]. When the gravimetric water content of the porous block changes from dry to saturated ([Formula: see text]), we measured a variation of [Formula: see text] in the thermosensitive resistor, which results in an end-point sensitivity of 130 m [Formula: see text] /%. The developed system can easily meet the standard requirement of measuring the gravimetric soil water content with a resolution of approximately [Formula: see text] , since the resistance is measured with a resolution of approximately [Formula: see text] , three orders of magnitude smaller than the sensitivity.
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spelling pubmed-79248322021-03-03 Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor Morais, Flávio Carvalhaes-Dias, Pedro Zhang, Yu Cabot, Andreu Flosi, Fábio S. Duarte, Luis Caparroz Dos Santos, Adelson Dias, José A. Siqueira Sensors (Basel) Article A low-cost signal processing circuit developed to measure and drive a heat dissipation soil matric potential sensor based on a single thermosensitive resistor is demonstrated. The [Formula: see text] has a high thermal coefficient, from [Formula: see text] C in the 20 to 25 [Formula: see text] C to [Formula: see text] C in the 20 to 25 [Formula: see text] C. The [Formula: see text] thermosensitive resistor is encapsulated with a porous gypsum block and is used as both the heating and temperature sensing element. To control the power dissipated on the thermosensitive resistor and keep it constant during the heat pulse, a mixed analogue/digital circuit is used. The developed control circuit is able to maintain the dissipated power at [Formula: see text] mW when the resistor changes from [Formula: see text] to [Formula: see text]. When the gravimetric water content of the porous block changes from dry to saturated ([Formula: see text]), we measured a variation of [Formula: see text] in the thermosensitive resistor, which results in an end-point sensitivity of 130 m [Formula: see text] /%. The developed system can easily meet the standard requirement of measuring the gravimetric soil water content with a resolution of approximately [Formula: see text] , since the resistance is measured with a resolution of approximately [Formula: see text] , three orders of magnitude smaller than the sensitivity. MDPI 2021-02-21 /pmc/articles/PMC7924832/ /pubmed/33669964 http://dx.doi.org/10.3390/s21041490 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Morais, Flávio
Carvalhaes-Dias, Pedro
Zhang, Yu
Cabot, Andreu
Flosi, Fábio S.
Duarte, Luis Caparroz
Dos Santos, Adelson
Dias, José A. Siqueira
Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title_full Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title_fullStr Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title_full_unstemmed Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title_short Low-Cost Control and Measurement Circuit for the Implementation of Single Element Heat Dissipation Soil Water Matric Potential Sensor Based on a SnSe(2) Thermosensitive Resistor
title_sort low-cost control and measurement circuit for the implementation of single element heat dissipation soil water matric potential sensor based on a snse(2) thermosensitive resistor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7924832/
https://www.ncbi.nlm.nih.gov/pubmed/33669964
http://dx.doi.org/10.3390/s21041490
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