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PMID: 30586913 Published · epublish English Journal Article

Implementation of Virtual Sensors for Monitoring Temperature in Greenhouses Using CFD and Control.

Sensors (Basel, Switzerland) ·Vol. 19 ·No. 1 ·2018-12-24

Guzmán CH, Carrera JL, Durán HA, Berumen J, Ortiz AA, Guirette OA, Arroyo A, Brizuela JA, Gómez F, Blanco A, Azcaray HR, Hernández M

Abstract

Virtual sensing is crucial in order to provide feasible and economical alternatives when physical measuring instruments are not available. Developing model-based virtual sensors to calculate real-time information at each targeted location is a complex endeavor in terms of sensing technology. This paper proposes a new approach for model-based virtual sensor development using computational fluid dynamics (CFD) and control. Its main objective is to develop a three-dimensional (3D) real-time simulator using virtual sensors to monitor the temperature in a greenhouse. To conduct this study, a small-scale greenhouse was designed, modeled, and fabricated. The controller was based on the convection heat transfer equation under specific assumptions and conditions. To determine the temperature distribution in the greenhouse, a CFD analysis was conducted. Only one well-calibrated and controlled physical sensor (temperature reference) was enough for the CFD analysis. After processing the result that was obtained from the real sensor output, each virtual sensor had learned the associative transfer function that estimated the output from given input data, resulting in a 3D real-time simulator. This study has demonstrated, for the first time, that CFD analysis and a control strategy can be combined to obtain system models for monitoring the temperature in greenhouses. These findings suggest that, generally, virtual sensing can be applied in large greenhouses for monitoring the temperature using a 3D real-time simulator.

Keywords
CFD greenhouse monitoring temperature control virtual sensor
作者与单位
共 12 位作者,点击展开单位 / ORCID
Guzmán Cesar H
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Carrera José L
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Durán Héctor A ORCID
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Berumen Javier
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Ortiz Arturo A
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Guirette Omar A ORCID
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Arroyo Angélica ORCID
Departamento de Ingeniería Mecatrónica, Universidad Politécnica de Zacatecas, Fresnillo 99080, Mexico. [email protected].
Brizuela Jorge A
Centro Universitario de los Valles, Universidad de Guadalajara, Ameca 46600, Mexico. [email protected].
Gómez Fabio
Unidad Académica Puerto Vallarta, Instituto Tecnológico José Mario Molina Pasquel y Henríquez, Tecnológico Nacional de México, Puerto Vallarta 48338, Mexico. [email protected].
Blanco Andrés ORCID
Centro Nacional de Investigación y Desarrollo Tecnológico (Cenidet), Tecnológico Nacional de México, Cuernavaca 62490, Mexico. [email protected].
Azcaray Héctor R
Centro Nacional de Investigación y Desarrollo Tecnológico (Cenidet), Tecnológico Nacional de México, Cuernavaca 62490, Mexico. [email protected].
Hernández Marlen ORCID
Unidad Académica de Matemáticas, Universidad Autónoma de Zacatecas, Zacatecas 98060, Mexico. [email protected].
Article Info
Journal
Sensors (Basel, Switzerland)
Abbr.
Sensors (Basel)
ISSN
1424-8220
Published
2018-12-24
电子出版
2018-00-24
Language
English
Country/Region
Switzerland
NLM ID
101204366
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