Detailed model & experimental validation of a flat solar collector.

Guido, Renzo - Galione, Pedro - Rodríguez-Muñoz, Juan M.

Resumen:

This work presents a comprehensive model of a commercially available flat-plate solar collector, including risers and headers, simulated using a custom-developed Python program. The program models each component of the collector, incorporating physical effects often neglected in other computational models but crucial for accurately predicting temperature profile changes at a sub-minute time scale. The flat-plate solar collector model employs a multi-node temperature arrangement, discretized along the horizontal or vertical axes. Each node consists of four temperatures: one for the glass cover, one for the aluminum casing, one for the absorber plate’s junction with the copper tubes, and one for the working fluid. The simulations were validated against experimental measurements conducted at a testing facility adhering to ISO 9806 standards, showing excellent agreement between simulation results and experimental data. The comparisons included data from three subtests: performance, incident angle modifier, and effective thermal capacity, all part of the steady-state testing method prescribed by the standard. All three subtests showed strong qualitative and quantitative agreement, with all parameters falling within the range of experimental uncertainty.

Detalles Bibliográficos
2024
Solar Collector
Thermal Energy
Transient Thermal Analysis
Flat Plate Solar Collector
Inglés
Universidad de la República
COLIBRI
https://hdl.handle.net/20.500.12008/48681
Acceso abierto
Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
_version_ 1875693099573837824
author Guido, Renzo
author2 Galione, Pedro
Rodríguez-Muñoz, Juan M.
author2_role author
author
author_facet Guido, Renzo
Galione, Pedro
Rodríguez-Muñoz, Juan M.
author_role author
bitstream.checksum.fl_str_mv 6429389a7df7277b72b7924fdc7d47a9
a006180e3f5b2ad0b88185d14284c0e0
4c31eff8bced6691f515913e11e0469d
3b50ae24bd8bd076d49a70878a8a2d2c
3cc7b821fd85d703111f53fab39ce9f8
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
MD5
MD5
MD5
bitstream.url.fl_str_mv http://localhost:8080/xmlui/bitstream/20.500.12008/48681/5/license.txt
http://localhost:8080/xmlui/bitstream/20.500.12008/48681/2/license_url
http://localhost:8080/xmlui/bitstream/20.500.12008/48681/3/license_text
http://localhost:8080/xmlui/bitstream/20.500.12008/48681/4/license_rdf
http://localhost:8080/xmlui/bitstream/20.500.12008/48681/1/GGR24.pdf
collection COLIBRI
dc.contributor.filiacion.none.fl_str_mv Guido Renzo, Universidad de la República (Uruguay). Facultad de Ingeniería.
Galione Pedro, Universidad de la República (Uruguay). Facultad de Ingeniería.
Rodríguez-Muñoz Juan M., Universidad de la República (Uruguay). Centro Universitario Regional Norte
dc.creator.none.fl_str_mv Guido, Renzo
Galione, Pedro
Rodríguez-Muñoz, Juan M.
dc.date.accessioned.none.fl_str_mv 2025-03-17T17:18:36Z
dc.date.available.none.fl_str_mv 2025-03-17T17:18:36Z
dc.date.issued.none.fl_str_mv 2024
dc.description.abstract.none.fl_txt_mv This work presents a comprehensive model of a commercially available flat-plate solar collector, including risers and headers, simulated using a custom-developed Python program. The program models each component of the collector, incorporating physical effects often neglected in other computational models but crucial for accurately predicting temperature profile changes at a sub-minute time scale. The flat-plate solar collector model employs a multi-node temperature arrangement, discretized along the horizontal or vertical axes. Each node consists of four temperatures: one for the glass cover, one for the aluminum casing, one for the absorber plate’s junction with the copper tubes, and one for the working fluid. The simulations were validated against experimental measurements conducted at a testing facility adhering to ISO 9806 standards, showing excellent agreement between simulation results and experimental data. The comparisons included data from three subtests: performance, incident angle modifier, and effective thermal capacity, all part of the steady-state testing method prescribed by the standard. All three subtests showed strong qualitative and quantitative agreement, with all parameters falling within the range of experimental uncertainty.
dc.format.extent.es.fl_str_mv 9 p.
dc.format.mimetype.es.fl_str_mv application/pdf
dc.identifier.citation.es.fl_str_mv Guido, R., Galione, P. y Rodríguez-Muñoz, J. Detailed model & experimental validation of a flat solar collector [en línea] EN: Proceedings del 20th Brazilian Congress of Thermal Sciences and Engineering, ENCIT 2024. 9 p.
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12008/48681
dc.language.iso.none.fl_str_mv en
eng
dc.publisher.es.fl_str_mv ENCIT
dc.relation.none.fl_str_mv Proceedings del 20th Brazilian Congress of Thermal Sciences and Engineering, ENCIT 2024. 10–14 Nov., 2024, Foz do Iguaçu- PR- Brazil.
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.es.fl_str_mv Solar Collector
Thermal Energy
Transient Thermal Analysis
Flat Plate Solar Collector
dc.title.none.fl_str_mv Detailed model & experimental validation of a flat solar collector.
dc.type.es.fl_str_mv Ponencia
dc.type.none.fl_str_mv info:eu-repo/semantics/conferenceObject
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description This work presents a comprehensive model of a commercially available flat-plate solar collector, including risers and headers, simulated using a custom-developed Python program. The program models each component of the collector, incorporating physical effects often neglected in other computational models but crucial for accurately predicting temperature profile changes at a sub-minute time scale. The flat-plate solar collector model employs a multi-node temperature arrangement, discretized along the horizontal or vertical axes. Each node consists of four temperatures: one for the glass cover, one for the aluminum casing, one for the absorber plate’s junction with the copper tubes, and one for the working fluid. The simulations were validated against experimental measurements conducted at a testing facility adhering to ISO 9806 standards, showing excellent agreement between simulation results and experimental data. The comparisons included data from three subtests: performance, incident angle modifier, and effective thermal capacity, all part of the steady-state testing method prescribed by the standard. All three subtests showed strong qualitative and quantitative agreement, with all parameters falling within the range of experimental uncertainty.
eu_rights_str_mv openAccess
format conferenceObject
id COLIBRI_cdcd86a3df10e05f90f1585b14efaa6f
identifier_str_mv Guido, R., Galione, P. y Rodríguez-Muñoz, J. Detailed model & experimental validation of a flat solar collector [en línea] EN: Proceedings del 20th Brazilian Congress of Thermal Sciences and Engineering, ENCIT 2024. 9 p.
instacron_str Universidad de la República
institution Universidad de la República
instname_str Universidad de la República
language eng
language_invalid_str_mv en
network_acronym_str COLIBRI
network_name_str COLIBRI
oai_identifier_str oai:colibri.udelar.edu.uy:20.500.12008/48681
publishDate 2024
reponame_str COLIBRI
repository.mail.fl_str_mv karina.camps@seciu.edu.uy
repository.name.fl_str_mv COLIBRI - Universidad de la República
repository_id_str 4771
rights_invalid_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
spelling Guido Renzo, Universidad de la República (Uruguay). Facultad de Ingeniería.Galione Pedro, Universidad de la República (Uruguay). Facultad de Ingeniería.Rodríguez-Muñoz Juan M., Universidad de la República (Uruguay). Centro Universitario Regional Norte2025-03-17T17:18:36Z2025-03-17T17:18:36Z2024Guido, R., Galione, P. y Rodríguez-Muñoz, J. Detailed model & experimental validation of a flat solar collector [en línea] EN: Proceedings del 20th Brazilian Congress of Thermal Sciences and Engineering, ENCIT 2024. 9 p.https://hdl.handle.net/20.500.12008/48681This work presents a comprehensive model of a commercially available flat-plate solar collector, including risers and headers, simulated using a custom-developed Python program. The program models each component of the collector, incorporating physical effects often neglected in other computational models but crucial for accurately predicting temperature profile changes at a sub-minute time scale. The flat-plate solar collector model employs a multi-node temperature arrangement, discretized along the horizontal or vertical axes. Each node consists of four temperatures: one for the glass cover, one for the aluminum casing, one for the absorber plate’s junction with the copper tubes, and one for the working fluid. The simulations were validated against experimental measurements conducted at a testing facility adhering to ISO 9806 standards, showing excellent agreement between simulation results and experimental data. The comparisons included data from three subtests: performance, incident angle modifier, and effective thermal capacity, all part of the steady-state testing method prescribed by the standard. All three subtests showed strong qualitative and quantitative agreement, with all parameters falling within the range of experimental uncertainty.Submitted by Rodríguez Eugenia (rodriguezvalverdeeugenia@gmail.com) on 2025-03-07T18:52:56Z No. of bitstreams: 2 license_rdf: 26539 bytes, checksum: 3b50ae24bd8bd076d49a70878a8a2d2c (MD5) GGR24.pdf: 2705938 bytes, checksum: 3cc7b821fd85d703111f53fab39ce9f8 (MD5)Approved for entry into archive by Machado Jimena (jmachado@fing.edu.uy) on 2025-03-17T16:45:10Z (GMT) No. of bitstreams: 2 license_rdf: 26539 bytes, checksum: 3b50ae24bd8bd076d49a70878a8a2d2c (MD5) GGR24.pdf: 2705938 bytes, checksum: 3cc7b821fd85d703111f53fab39ce9f8 (MD5)Made available in DSpace by Luna Fabiana (fabiana.luna@seciu.edu.uy) on 2025-03-17T17:18:36Z (GMT). No. of bitstreams: 2 license_rdf: 26539 bytes, checksum: 3b50ae24bd8bd076d49a70878a8a2d2c (MD5) GGR24.pdf: 2705938 bytes, checksum: 3cc7b821fd85d703111f53fab39ce9f8 (MD5) Previous issue date: 20249 p.application/pdfenengENCITProceedings del 20th Brazilian Congress of Thermal Sciences and Engineering, ENCIT 2024. 10–14 Nov., 2024, Foz do Iguaçu- PR- Brazil.Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)info:eu-repo/semantics/openAccessLicencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)Solar CollectorThermal EnergyTransient Thermal AnalysisFlat Plate Solar CollectorDetailed model & experimental validation of a flat solar collector.Ponenciainfo:eu-repo/semantics/conferenceObjectinfo:eu-repo/semantics/publishedVersionreponame:COLIBRIinstname:Universidad de la Repúblicainstacron:Universidad de la RepúblicaGuido, RenzoGalione, PedroRodríguez-Muñoz, Juan M.LICENSElicense.txtlicense.txttext/plain; charset=utf-84267http://localhost:8080/xmlui/bitstream/20.500.12008/48681/5/license.txt6429389a7df7277b72b7924fdc7d47a9MD55CC-LICENSElicense_urllicense_urltext/plain; charset=utf-850http://localhost:8080/xmlui/bitstream/20.500.12008/48681/2/license_urla006180e3f5b2ad0b88185d14284c0e0MD52license_textlicense_texttext/html; charset=utf-829593http://localhost:8080/xmlui/bitstream/20.500.12008/48681/3/license_text4c31eff8bced6691f515913e11e0469dMD53license_rdflicense_rdfapplication/rdf+xml; charset=utf-826539http://localhost:8080/xmlui/bitstream/20.500.12008/48681/4/license_rdf3b50ae24bd8bd076d49a70878a8a2d2cMD54ORIGINALGGR24.pdfGGR24.pdfapplication/pdf2705938http://localhost:8080/xmlui/bitstream/20.500.12008/48681/1/GGR24.pdf3cc7b821fd85d703111f53fab39ce9f8MD5120.500.12008/486812025-06-26 12:16:37.463oai:colibri.udelar.edu.uy:20.500.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Institucionalhttps://www.colibri.udelar.edu.uyUniversidadhttps://udelar.edu.uy/https://www.colibri.udelar.edu.uy/oai/requestkarina.camps@seciu.edu.uyUruguayopendoar:47712025-06-26T15:16:37COLIBRI - Universidad de la Repúblicafalse
spellingShingle Detailed model & experimental validation of a flat solar collector.
Guido, Renzo
Solar Collector
Thermal Energy
Transient Thermal Analysis
Flat Plate Solar Collector
status_str publishedVersion
title Detailed model & experimental validation of a flat solar collector.
title_full Detailed model & experimental validation of a flat solar collector.
title_fullStr Detailed model & experimental validation of a flat solar collector.
title_full_unstemmed Detailed model & experimental validation of a flat solar collector.
title_short Detailed model & experimental validation of a flat solar collector.
title_sort Detailed model & experimental validation of a flat solar collector.
topic Solar Collector
Thermal Energy
Transient Thermal Analysis
Flat Plate Solar Collector
url https://hdl.handle.net/20.500.12008/48681