Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels

Photovoltaic solar energy is the third most widely used renewable source worldwide, after hydroelectric and wind energy, and this energy source requires experimental and theoretical development in specific topics such as the effect of environmental conditions on energy performance. Thus, this study&...

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Autores:
Mejía Ruiz, Saúl
Tipo de recurso:
Fecha de publicación:
2019
Institución:
Universidad del Atlántico
Repositorio:
Repositorio Uniatlantico
Idioma:
eng
OAI Identifier:
oai:repositorio.uniatlantico.edu.co:20.500.12834/953
Acceso en línea:
https://hdl.handle.net/20.500.12834/953
Palabra clave:
— Photovoltaic solar energy; weather conditions; solar systems performance; solar panel temperature
Rights
openAccess
License
http://creativecommons.org/licenses/by-nc/4.0/
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dc.title.spa.fl_str_mv Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
title Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
spellingShingle Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
— Photovoltaic solar energy; weather conditions; solar systems performance; solar panel temperature
title_short Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
title_full Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
title_fullStr Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
title_full_unstemmed Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
title_sort Effects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline Panels
dc.creator.fl_str_mv Mejía Ruiz, Saúl
dc.contributor.author.none.fl_str_mv Mejía Ruiz, Saúl
dc.contributor.other.none.fl_str_mv Vanegas Chamorro, Marley
Valencia Ochoa, Guillermo
Fábregas Villegas, Jonathan
Acevedo Peñaloza, Carlos
dc.subject.keywords.spa.fl_str_mv — Photovoltaic solar energy; weather conditions; solar systems performance; solar panel temperature
topic — Photovoltaic solar energy; weather conditions; solar systems performance; solar panel temperature
description Photovoltaic solar energy is the third most widely used renewable source worldwide, after hydroelectric and wind energy, and this energy source requires experimental and theoretical development in specific topics such as the effect of environmental conditions on energy performance. Thus, this study's main objective was to determine the influence that meteorological conditions have on the performance of solar photovoltaic systems, based on measurements from a measurement station installed in the city of Barranquilla-Colombia, to determine the factors that significantly affect the system’s energy efficiency deviation. The experimental results show a dependence of the solar panel energy performance on some weather conditions, which is an uncontrolled phenomenon such as the ambient temperature and the atmosphere's humidity. Also, solar panel temperature and irradiance were the parameters with greater importance in the systems power generation. Also, the panel temperature must be controlled to obtain the desired response, because the panel temperature is inversely proportional to the voltage and directly proportional to the current. However, the negative effect of increased panel temperature in sunny climates is compensated by increased solar hours, so the summer system has less instantaneous efficiency, but it has higher solar output throughout the day. Therefore, solar energy production study should be related to total daily production.
publishDate 2019
dc.date.submitted.none.fl_str_mv 2019-07-22
dc.date.issued.none.fl_str_mv 2021-10-31
dc.date.accessioned.none.fl_str_mv 2022-11-15T21:13:22Z
dc.date.available.none.fl_str_mv 2022-11-15T21:13:22Z
dc.type.coarversion.fl_str_mv http://purl.org/coar/version/c_970fb48d4fbd8a85
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dc.type.driver.spa.fl_str_mv info:eu-repo/semantics/article
dc.type.hasVersion.spa.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.spa.spa.fl_str_mv Artículo
status_str publishedVersion
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12834/953
dc.identifier.doi.none.fl_str_mv 10.18517/IJASEIT.11.5.9335
dc.identifier.instname.spa.fl_str_mv Universidad del Atlántico
dc.identifier.reponame.spa.fl_str_mv Repositorio Universidad del Atlántico
url https://hdl.handle.net/20.500.12834/953
identifier_str_mv 10.18517/IJASEIT.11.5.9335
Universidad del Atlántico
Repositorio Universidad del Atlántico
dc.language.iso.spa.fl_str_mv eng
language eng
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eu_rights_str_mv openAccess
dc.format.mimetype.spa.fl_str_mv application/pdf
dc.publisher.place.spa.fl_str_mv Barranquilla
dc.publisher.sede.spa.fl_str_mv Sede Norte
dc.source.spa.fl_str_mv International Journal on Advance Science engineering information technology
institution Universidad del Atlántico
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spelling Mejía Ruiz, Saúl3c06cc49-a307-4521-99a9-092508e613d9Vanegas Chamorro, MarleyValencia Ochoa, GuillermoFábregas Villegas, JonathanAcevedo Peñaloza, Carlos2022-11-15T21:13:22Z2022-11-15T21:13:22Z2021-10-312019-07-22https://hdl.handle.net/20.500.12834/95310.18517/IJASEIT.11.5.9335Universidad del AtlánticoRepositorio Universidad del AtlánticoPhotovoltaic solar energy is the third most widely used renewable source worldwide, after hydroelectric and wind energy, and this energy source requires experimental and theoretical development in specific topics such as the effect of environmental conditions on energy performance. Thus, this study's main objective was to determine the influence that meteorological conditions have on the performance of solar photovoltaic systems, based on measurements from a measurement station installed in the city of Barranquilla-Colombia, to determine the factors that significantly affect the system’s energy efficiency deviation. The experimental results show a dependence of the solar panel energy performance on some weather conditions, which is an uncontrolled phenomenon such as the ambient temperature and the atmosphere's humidity. Also, solar panel temperature and irradiance were the parameters with greater importance in the systems power generation. Also, the panel temperature must be controlled to obtain the desired response, because the panel temperature is inversely proportional to the voltage and directly proportional to the current. However, the negative effect of increased panel temperature in sunny climates is compensated by increased solar hours, so the summer system has less instantaneous efficiency, but it has higher solar output throughout the day. Therefore, solar energy production study should be related to total daily production.application/pdfenghttp://creativecommons.org/licenses/by-nc/4.0/Attribution-NonCommercial 4.0 Internationalinfo:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2International Journal on Advance Science engineering information technologyEffects of Environmental Conditions on Photovoltaic Generation System Performance with Polycrystalline PanelsPúblico general— Photovoltaic solar energy; weather conditions; solar systems performance; solar panel temperatureinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionArtículohttp://purl.org/coar/version/c_970fb48d4fbd8a85http://purl.org/coar/resource_type/c_2df8fbb1BarranquillaSede Norte[1] S., Sera, D., Kerekes, T., & Teodorescu, R., “Diagnostic method for photovoltaic systems based on light I–V measurements,” Solar Energy, vol. 119, pp. 29-44, 2015[2] Tang, J. H., Au, M. T., Shareef, H., & Busrah, A. M., “A Strategic Approach Using Representative LV Networks in the Assessment of Technical Losses on LV Network with Solar Photovoltaic,” International Journal on Advanced Science, Engineering and Information Technology, vol. 7(4), pp. 1220-1226, 2017[3] Othman, Z., Sulaiman, S. I., Musirin, I., Omar, A. M., Shaari, S., & Rosselan, M. Z.,” Sizing Optimization of Hybrid Stand Alone Photovoltaic System,” International Journal on Advanced Science, Engineering, and Information Technology, vol 7(6), pp. 1991-1997, 2017.[4] Razak, A., Irwan, Y. M., Leow, W. Z., Irwanto, M., Safwati, I., & Zhafarina, M., “Investigation of the effect temperature on photovoltaic (PV) panel output performance”, International Journal on Advanced Science, Engineering and Information Technology, vol. 6(5), pp. 682-688, 2016.[5] García, F., Fabregas, J., “Effect of Environmental Factors on the Performance of Photovoltaic Solar Modules Arrays”, International Journal of ChemTech Research, vol. 11(1), pp. 23-32, 2018[6] Dhimish, M., Holmes, V., Mather, P., & Sibley, M., Novel hot spot mitigation technique to enhance photovoltaic solar panels output power performance. Solar Energy Materials and Solar Cells, vol. 179, pp. 72-79, 2018[7] Moaleman, A., Kasaeian, A., Aramesh, M., Mahian, O., Sahota, L., & Tiwari, G. N., “Simulation of the performance of a solar concentrating photovoltaic-thermal collector, applied in a combined cooling heating and power generation system,” Energy conversion and management, vol. 160, pp. 191-208, 2018.[8] Mahmoud, A., Fath, H., & Ahmed, M., “Enhancing the performance of a solar driven hybrid solar still/humidification-dehumidification desalination system integrated with solar concentrator and photovoltaic panels,” Desalination, vol. 430, pp. 165-179, 2018.[9] Valencia, G., Fontalvo, A., Cárdenas, Y., Duarte, J., & Isaza, C., “Energy and Exergy Analysis of Different Exhaust Waste Heat Recovery Systems for Natural Gas Engine Based on ORC,” Energies, vol. 12(12), pp. 2378, 2019[10] Fernández Díez, P., “Procesos termosolares en baja, media y alta temperatura”, Departamento de Ingeniería Eléctrica y Energética, Universidad de Cantabria, España. 2001[11] J., Cepeda, A., Sierra., “Aspectos que afectan la eficiencia en los paneles fotovoltaicos y sus potenciales,” Facultad de Ingeniería Mecánica Universidad Santo Tomás Bogotá, Colombia, 2017.[12] Jáuregui Ostos, E., “Algunas alteraciones de largo periodo del clima de la Ciudad de México debidas a la urbanización: Revisión y perspectivas,” Investigaciones geográficas, vol. 31, pp. 09-44. 1995.[13] Prieto, J. I., & Bacaicoa, L. E., “Fundamentos y aplicaciones de la energía solar térmica,” Universidad de Oviedo, Servicio de Publicaciones, España, 1998.[14] Montoro J., “Energías Renovables: Radiación Solar. Instituto de Investigación de Energías Renovables de Albacete,” Castilla – La Mancha, España, 2007[15] Jaramillo, O., “Transporte de energía solar concentrada a través de fibras ópticas: acoplamiento fibra-concentrador y estudio térmico,” Bachelor Thesis, Universidad Autónoma de Morelos, Estado de Morelos, México, 1998.[16] Portero, S. F., “Radiación ultravioleta. Cátedra de dermatología de la escuela de medicina―Luis Razetti,” Universidad central de Venezuela, Caracas, 2004[17] Jáuregui Ostos, E., “Algunas alteraciones de largo periodo del clima de la Ciudad de México debidas a la urbanización: Revisión y perspectivas,” Investigaciones geográficas, vol. 31, pp. 09-44, 1995.[18] Mattei, M., Notton, G., Cristofari, C., Muselli, M., & Poggi, P., “Calculation of the polycrystalline PV module temperature using a simple method of energy balance,” Renewable energy, vol. 31(4), pp. 553-567, 2006.[19] Schwingshackl, C., Petitta, M., Wagner, J. E., Belluardo, G., Moser, D., Castelli, M., & Tetzlaff, A., “Wind effect on PV module temperature: Analysis of different techniques for an accurate estimation,” Energy Procedia, vol. 40, pp. 77-86, 2013.http://purl.org/coar/resource_type/c_6501ORIGINAL9335-37115-1-PB.pdf9335-37115-1-PB.pdfapplication/pdf1464819https://repositorio.uniatlantico.edu.co/bitstream/20.500.12834/953/1/9335-37115-1-PB.pdf001ce9200debd11af8ae68d1d62dfe36MD51CC-LICENSElicense_rdflicense_rdfapplication/rdf+xml; charset=utf-8914https://repositorio.uniatlantico.edu.co/bitstream/20.500.12834/953/2/license_rdf24013099e9e6abb1575dc6ce0855efd5MD52LICENSElicense.txtlicense.txttext/plain; charset=utf-81306https://repositorio.uniatlantico.edu.co/bitstream/20.500.12834/953/3/license.txt67e239713705720ef0b79c50b2ececcaMD5320.500.12834/953oai:repositorio.uniatlantico.edu.co:20.500.12834/9532022-11-15 16:13:23.391DSpace de la Universidad de Atlánticosysadmin@mail.uniatlantico.edu.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