Cargando…

Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment

Globally, the greenhouses' farming area comprises 500 000 ha, and they efficiently produce more than half of the vegetables consumed around the world. Nevertheless, high-yield crops tend to be incredibly energy-intensive. This study proposes designing and building a coupled geothermal heat pump...

Descripción completa

Detalles Bibliográficos
Autores principales: Chiriboga, Gonzalo, Capelo, Santiago, Bunces, Pablo, Guzmán, Carla, Cepeda, Jonathan, Gordillo, Gilda, Montesdeoca, Diego E., Carvajal C, Ghem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8718490/
https://www.ncbi.nlm.nih.gov/pubmed/35005271
http://dx.doi.org/10.1016/j.heliyon.2021.e08608
_version_ 1784624738848473088
author Chiriboga, Gonzalo
Capelo, Santiago
Bunces, Pablo
Guzmán, Carla
Cepeda, Jonathan
Gordillo, Gilda
Montesdeoca, Diego E.
Carvajal C, Ghem
author_facet Chiriboga, Gonzalo
Capelo, Santiago
Bunces, Pablo
Guzmán, Carla
Cepeda, Jonathan
Gordillo, Gilda
Montesdeoca, Diego E.
Carvajal C, Ghem
author_sort Chiriboga, Gonzalo
collection PubMed
description Globally, the greenhouses' farming area comprises 500 000 ha, and they efficiently produce more than half of the vegetables consumed around the world. Nevertheless, high-yield crops tend to be incredibly energy-intensive. This study proposes designing and building a coupled geothermal heat pump for a 470 m(2) greenhouse in the Andean zone conditions addressing a requirement of 15 °C at night and 30 °C during the day. Firstly, the study determined the energy potential of the solar and geothermal sources employing actual measurements and contrasting the results with theoretical models. Then, it developed an energy balance in the greenhouse to size the geothermal heat pump using the vapor compression cycle. Finally, the comprehensive system was built and evaluated through the Leveled Cost of Heat (LCOH). The operation requires a potential of 29.56 and 65.76 kW for heating and cooling; this is technically feasible when running the system with a heating flow driven by an optimized temperature ramp of 1.64 °C h(−1). Also, the capacity factor (CF) shows that a lifespan between 12 to 14 years is required to reach acceptable LCOH when CF is as low as 0.45. Financially, it is necessary to foster customs exemptions to make it competitive versus more traditional sources such as electricity and LPG since the main components of the heat pump and the geothermal exchanger are not produced locally and represent nearly 70 % of the upfront costs.
format Online
Article
Text
id pubmed-8718490
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-87184902022-01-06 Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment Chiriboga, Gonzalo Capelo, Santiago Bunces, Pablo Guzmán, Carla Cepeda, Jonathan Gordillo, Gilda Montesdeoca, Diego E. Carvajal C, Ghem Heliyon Research Article Globally, the greenhouses' farming area comprises 500 000 ha, and they efficiently produce more than half of the vegetables consumed around the world. Nevertheless, high-yield crops tend to be incredibly energy-intensive. This study proposes designing and building a coupled geothermal heat pump for a 470 m(2) greenhouse in the Andean zone conditions addressing a requirement of 15 °C at night and 30 °C during the day. Firstly, the study determined the energy potential of the solar and geothermal sources employing actual measurements and contrasting the results with theoretical models. Then, it developed an energy balance in the greenhouse to size the geothermal heat pump using the vapor compression cycle. Finally, the comprehensive system was built and evaluated through the Leveled Cost of Heat (LCOH). The operation requires a potential of 29.56 and 65.76 kW for heating and cooling; this is technically feasible when running the system with a heating flow driven by an optimized temperature ramp of 1.64 °C h(−1). Also, the capacity factor (CF) shows that a lifespan between 12 to 14 years is required to reach acceptable LCOH when CF is as low as 0.45. Financially, it is necessary to foster customs exemptions to make it competitive versus more traditional sources such as electricity and LPG since the main components of the heat pump and the geothermal exchanger are not produced locally and represent nearly 70 % of the upfront costs. Elsevier 2021-12-17 /pmc/articles/PMC8718490/ /pubmed/35005271 http://dx.doi.org/10.1016/j.heliyon.2021.e08608 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Chiriboga, Gonzalo
Capelo, Santiago
Bunces, Pablo
Guzmán, Carla
Cepeda, Jonathan
Gordillo, Gilda
Montesdeoca, Diego E.
Carvajal C, Ghem
Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title_full Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title_fullStr Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title_full_unstemmed Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title_short Harnessing of geothermal energy for a greenhouse in Ecuador employing a heat pump: design, construction, and feasibility assessment
title_sort harnessing of geothermal energy for a greenhouse in ecuador employing a heat pump: design, construction, and feasibility assessment
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8718490/
https://www.ncbi.nlm.nih.gov/pubmed/35005271
http://dx.doi.org/10.1016/j.heliyon.2021.e08608
work_keys_str_mv AT chiribogagonzalo harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT capelosantiago harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT buncespablo harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT guzmancarla harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT cepedajonathan harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT gordillogilda harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT montesdeocadiegoe harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment
AT carvajalcghem harnessingofgeothermalenergyforagreenhouseinecuadoremployingaheatpumpdesignconstructionandfeasibilityassessment