Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones
La energía solar fotovoltaica se muestra como una buena alternativa para suplir el aumento de la demanda energética actual, ya que se tiene una disponibilidad de recurso inagotable y a la hora de producir energía no genera grandes impactos ambientales en comparación a las fuentes convencionales que...
- Autores:
-
Cepeda Moya, Juan Sebastian
- Tipo de recurso:
- Trabajo de grado de pregrado
- Fecha de publicación:
- 2017
- Institución:
- Universidad Santo Tomás
- Repositorio:
- Repositorio Institucional USTA
- Idioma:
- spa
- OAI Identifier:
- oai:repository.usta.edu.co:11634/4196
- Acceso en línea:
- http://hdl.handle.net/11634/4196
- Palabra clave:
- Ingeniería mecánica
Energía solar
Clima
Oferta y demanda
Eficiencia
energías renovables
máximo punto de potencia (MPP)
panel fotovoltaico
Variaciones climáticas
- Rights
- openAccess
- License
- Atribución-NoComercial-SinDerivadas 2.5 Colombia
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Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| title |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| spellingShingle |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones Ingeniería mecánica Energía solar Clima Oferta y demanda Eficiencia energías renovables máximo punto de potencia (MPP) panel fotovoltaico Variaciones climáticas |
| title_short |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| title_full |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| title_fullStr |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| title_full_unstemmed |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| title_sort |
Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones |
| dc.creator.fl_str_mv |
Cepeda Moya, Juan Sebastian |
| dc.contributor.advisor.spa.fl_str_mv |
Sierra Alarcon, Adriana Fernanda |
| dc.contributor.author.spa.fl_str_mv |
Cepeda Moya, Juan Sebastian |
| dc.contributor.orcid.none.fl_str_mv |
https://orcid.org/0000-0002-9666-1246 |
| dc.contributor.corporatename.spa.fl_str_mv |
Universidad Santo Tomás |
| dc.subject.lemb.spa.fl_str_mv |
Ingeniería mecánica |
| topic |
Ingeniería mecánica Energía solar Clima Oferta y demanda Eficiencia energías renovables máximo punto de potencia (MPP) panel fotovoltaico Variaciones climáticas |
| dc.subject.lemb.none.fl_str_mv |
Energía solar Clima Oferta y demanda |
| dc.subject.proposal.spa.fl_str_mv |
Eficiencia energías renovables máximo punto de potencia (MPP) panel fotovoltaico Variaciones climáticas |
| description |
La energía solar fotovoltaica se muestra como una buena alternativa para suplir el aumento de la demanda energética actual, ya que se tiene una disponibilidad de recurso inagotable y a la hora de producir energía no genera grandes impactos ambientales en comparación a las fuentes convencionales que utilizan recursos fósiles. El objetivo de este trabajo es revisar los factores que afectan la eficiencia de un panel solar fotovoltaico y determinar los avances científicos que se han propuesto para reducir estos factores. La eficiencia y potencia entregada por un panel fotovoltaico son condiciones que se ven afectadas, principalmente por aspectos ambientales y tecnologías utilizadas en su proceso de fabricación |
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2017 |
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2017-07-19T21:45:26Z |
| dc.date.available.spa.fl_str_mv |
2017-07-19T21:45:26Z |
| dc.date.issued.spa.fl_str_mv |
2017 |
| dc.type.none.fl_str_mv |
bachelor thesis |
| dc.type.local.spa.fl_str_mv |
Tesis de pregrado |
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info:eu-repo/semantics/acceptedVersion |
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http://purl.org/coar/resource_type/c_7a1f |
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info:eu-repo/semantics/bachelorThesis |
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http://purl.org/coar/resource_type/c_7a1f |
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acceptedVersion |
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Cepeda Moya, J. S. (2017) Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones. [Trabajo de Grado, Universidad Santo Tomás]. Repositorio Institucional. |
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http://hdl.handle.net/11634/4196 |
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reponame:Repositorio Institucional Universidad Santo Tomás |
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instname:Universidad Santo Tomás |
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repourl:https://repository.usta.edu.co |
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Cepeda Moya, J. S. (2017) Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones. [Trabajo de Grado, Universidad Santo Tomás]. Repositorio Institucional. reponame:Repositorio Institucional Universidad Santo Tomás instname:Universidad Santo Tomás repourl:https://repository.usta.edu.co |
| url |
http://hdl.handle.net/11634/4196 |
| dc.language.iso.spa.fl_str_mv |
spa |
| language |
spa |
| dc.relation.references.none.fl_str_mv |
N. Kannan and D. Vakeesan, “Solar energy for future world: - A review,” Renew. Sustain. Energy Rev., vol. 62, pp. 1092–1105, 2016. “Banco Mundial.” [Online]. Available: http://www.bancomundial.org/. [Accessed: 05- May-2017]. “International Energy Agency.” [Online]. Available: https://www.iea.org/. [Accessed: 05- May-2017]. M. A. V. Zapata, O. S. Feria, R. de G. G. Huerta, O. V. Galan, S. A. Hernandez, R. S. Flores, Y. Matsumoto, and K. S. Alcantara, Tecnologías Solar-Eólica-Hidrógeno-Pilas de Combustible como fuentes de energía. 2009. “Home - REN21.” [Online]. Available: http://www.ren21.net/. [Accessed: 05-May-2017]. P. Gonçalves, V. Sampaio, M. Orestes, and A. González, “Photovoltaic solar energy : Conceptual framework,” vol. 74, no. December 2016, pp. 590–601, 2017. F. Corcelli, M. Ripa, and S. Ulgiati, “End-of-life treatment of crystalline silicon photovoltaic panels . An emergy-based case study,” J. Clean. Prod., 2017. REN21, “Energías renovables 2016. Reporte de la situación mundial,” 2016. Consorcio Energético CORPOEMA, “Plan de Desarrollo para las Fuentes no Convencionales de Energía en Colombia (PDFNCE),” Formulación un plan Desarro. para las fuentes no Conv. en Colomb. V1, vol. 1, pp. 25–28, 2010. “ACCIONA - Líder Mundial en Energía Renovable e Infraestructuras.” [Online]. Available: https://www.acciona.com/es/. [Accessed: 21- Jun-2017]. M. A. Lamigueiro, Óscar Perpiñán, Antonio Colmenar, Diseño de sistemas fotovoltaicos. 2012. D. M. Morales, M. Cappelletti, G. Casas, W. Hasperue, and E. P. Y Blanca, “Estudio basado en Algoritmos Genticos de celdas solares expuestas a radiación,” 2016 IEEE Bienn. Congr. Argentina, ARGENCON 2016, pp. 1–5, 2016. Anónimo, “Componentes de una instalación solar fotovoltaica,” 2012. Grupo Simec Chile SRL, “Analisis de un Sistema e Iluminacion, utilizando ampolletas de bajo Consumo y alimentado por paneles fotovoltaicos,” vol. 1, p. 138, 2010. E. E. Granda-Gutiérrez, O. A. Orta-Salomón, J. C. Díaz-Guillén, M. A. Jimenez, M. Osorio, and M. A. González, “Modelado y Simulacion de Celdas y Paneles Solares. ISSN:1405-2172,” Congr. Int. Ing. Electrón. Mem. Electro 2013, no. October, pp. 17–22, 2013. C. E. C. Nogueira, J. Bedin, R. K. Niedzialkoski, S. N. M. De Souza, and J. C. M. Das Neves, “Performance of monocrystalline and polycrystalline solar panels in a water pumping system in Brazil,” Renew. Sustain. Energy Rev., vol. 51, pp. 1610–1616, 2015. Ente Vasco, “La Energia Solar Fotovoltaica,” p. 90, 2000. K. H. Kapumpa and A. S. Virdi, “A Review Paper on Solar Photovoltaic Systems,” vol. 9, no. 41, pp. 43–52, 2016. A. Basnet, “Architectural Integration of Photovoltaic and Solar Thermal Collector Systems into buildings,” Master’s Thesis, no. June, 2012. M. Mirzaei and M. Z. Mohiabadi, “A comparative analysis of long-term field test of monocrystalline and polycrystalline PV power generation in semi arid climate conditions,” Energy Sustain. Dev., vol. 38, pp. 93–101, 2017. S. Edwin and T. Salamanca, “AN OPEN-SOURCE HARDWARE I-V CURVE TRACER FOR MONITORING PV OUTPUT IN BOLIVIA,” vol. 2, no. 14, pp. 42–64, 2014. O. D. Basak and B. S. Sazak, “Effect of developments on a PV system efficiency,” 2013 4th Int. Symp. Electr. Electron. Eng. ISEEE 2013 - Proc., 2013. R. Bhol, R. Dash, A. Pradhan, and S. M. Ali, “Environmental effect assessment on performance of solar PV panel,” 2015 Int. Conf. Circuits, Power Comput. Technol. [ICCPCT-2015], pp. 1–5, 2015. S. Dubey, J. N. Sarvaiya, and B. Seshadri, “Temperature dependent photovoltaic (PV) efficiency and its effect on PV production in the world - A review,” Energy Procedia, vol. 33, pp. 311–321, 2013. W. G. J. Van Helden, R. J. C. Van Zolingen, and H. A. Zondag, “PV Thermal systems: PV panels supplying renewable electricity and heat,” Prog. Photovoltaics Res. Appl., vol. 12, no. 6, pp. 415– 426, 2004. K. Kant, A. Shukla, A. Sharma, and P. Henry, “Thermal response of poly-crystalline silicon photovoltaic panels : Numerical simulation and experimental study,” Sol. Energy, vol. 134, pp. 147–155, 2016. M. D. Kempe, D. C. Miller, J. H. Wohlgemuth, S. R. Kurtz, J. M. Moseley, Q. A. Shah, G. Tamizhmani, K. Sakurai, M. Inoue, T. Doi, A. Masuda, S. L. Samuels, and C. E. Vanderpan, “Field testing of thermoplastic encapsulants in high-temperature installations,” Energy Sci. Eng., vol. 3, no. 6, pp. 565–580, 2015. H. M. S. Bahaidarah, A. A. B. Baloch, and P. Gandhidasan, “Uniform cooling of photovoltaic panels: A review,” Renew. Sustain. Energy Rev., vol. 57, pp. 1520–1544, 2016. T. A. S.S. Chandel, “Review of cooling techniques using phase change materials for enhancing efficiency of photovoltaic power systems,” Renew. Sustain. Energy Rev., vol. 73, no. October 2016, pp. 1342–1351, 2017. F. Schiro, A. Benato, A. Stoppato, and N. 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Mortazavi, “A new MPPT scheme based on a novel fuzzy approach,” Renew. Sustain. Energy Rev., vol. 74, no. October 2016, pp. 1147–1169, 2017. R. Boukenoui, R. Bradai, A. Mellit, M. Ghanes, and H. Salhi, “Comparative Analysis of P & O , Modified Hill Climbing-FLC , and Adaptive P & O FLC MPPTs for Microgrid Standalone PV System,” vol. 5, pp. 1095–1099, 2015. K. L. Lian, J. H. Jhang, and I. S. Tian, “A Maximum Power Point Tracking Method Based on Perturb and-Observe Combined With Particle Swarm Optimization,” IEEE J. Photovoltaics, vol. 4, no. 2, pp. 626–633, 2014. O. Guenounou, B. Dahhou, and F. Chabour, “Adaptive fuzzy controller based MPPT for photovoltaic systems,” Energy Convers. Manag., vol. 78, pp. 843–850, 2014. A. F. Murtaza, M. Chiaberge, F. Spertino, U. T. Shami, D. Boero, and M. De Giuseppe, “MPPT technique based on improved evaluation of photovoltaic parameters for uniformly irradiated photovoltaic array,” Electr. Power Syst. Res., vol. 145, pp. 248–263, 2017. P. Kofinas, S. Doltsinis, A. I. Dounis, and G. A. Vouros, “A reinforcement learning approach for MPPT control method of photovoltaic sources,” Renew. Energy, vol. 108, 2017. N. Chatrenour, H. Razmi, and H. Doagou Mojarrad, “Improved double integral sliding mode MPPT controller based parameter estimation for a stand-alone photovoltaic system,” Energy Convers. Manag., vol. 139, pp. 97–109, 2017. M. Benghanem, “Optimization of tilt angle for solar panel: Case study for Madinah, Saudi Arabia,” Appl. Energy, vol. 88, no. 4, pp. 1427– 1433, 2011. S. Akhlaghi, S. Member, M. Sarailoo, and S. Member, “Study of Sufficient Number of Optimal Tilt Angle Adjustment to Maximize Residential Solar Panels Yield,” 2017. A. Marucci and A. Cappuccini, “Dynamic photovoltaic greenhouse : Energy efficiency in clear sky conditions,” Appl. Energy, vol. 170, pp. 362–376, 2016 H. Fathabadi, “Novel high ef fi cient of fl ine sensorless dual-axis solar tracker for using in photovoltaic systems and solar concentrators,” Renew. Energy, vol. 95, pp. 485–494, 2016. D. La Manna, V. Li Vigni, E. Riva Sanseverino, V. Di Dio, and P. Romano, “Reconfigurable electrical interconnection strategies for photovoltaic arrays: A review,” Renew. Sustain. Energy Rev., vol. 33, pp. 412–426, 2014 |
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Sierra Alarcon, Adriana FernandaCepeda Moya, Juan Sebastianhttps://orcid.org/0000-0002-9666-1246Universidad Santo Tomás2017-07-19T21:45:26Z2017-07-19T21:45:26Z2017Cepeda Moya, J. S. (2017) Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Soluciones. [Trabajo de Grado, Universidad Santo Tomás]. Repositorio Institucional.http://hdl.handle.net/11634/4196reponame:Repositorio Institucional Universidad Santo Tomásinstname:Universidad Santo Tomásrepourl:https://repository.usta.edu.coLa energía solar fotovoltaica se muestra como una buena alternativa para suplir el aumento de la demanda energética actual, ya que se tiene una disponibilidad de recurso inagotable y a la hora de producir energía no genera grandes impactos ambientales en comparación a las fuentes convencionales que utilizan recursos fósiles. El objetivo de este trabajo es revisar los factores que afectan la eficiencia de un panel solar fotovoltaico y determinar los avances científicos que se han propuesto para reducir estos factores. La eficiencia y potencia entregada por un panel fotovoltaico son condiciones que se ven afectadas, principalmente por aspectos ambientales y tecnologías utilizadas en su proceso de fabricaciónIngeniero MecánicoPregradoapplication/pdfspaUniversidad Santo TomásPregrado Ingeniería MecánicaFacultad de Ingeniería MecánicaAtribución-NoComercial-SinDerivadas 2.5 Colombiahttp://creativecommons.org/licenses/by-nc-nd/2.5/co/Abierto (Texto Completo)info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Aspectos Que Afectan la Eficiencia en los Paneles Fotovoltaicos y Sus Potenciales Solucionesbachelor thesisTesis de pregradoinfo:eu-repo/semantics/acceptedVersionhttp://purl.org/coar/resource_type/c_7a1finfo:eu-repo/semantics/bachelorThesisIngeniería mecánicaEnergía solarClimaOferta y demandaEficienciaenergías renovablesmáximo punto de potencia (MPP)panel fotovoltaicoVariaciones climáticasCRAI-USTA BogotáN. Kannan and D. Vakeesan, “Solar energy for future world: - A review,” Renew. Sustain. Energy Rev., vol. 62, pp. 1092–1105, 2016.“Banco Mundial.” [Online]. Available: http://www.bancomundial.org/. [Accessed: 05- May-2017].“International Energy Agency.” [Online]. Available: https://www.iea.org/. [Accessed: 05- May-2017].M. A. V. Zapata, O. S. Feria, R. de G. G. Huerta, O. V. Galan, S. A. Hernandez, R. S. Flores, Y. Matsumoto, and K. S. Alcantara, Tecnologías Solar-Eólica-Hidrógeno-Pilas de Combustible como fuentes de energía. 2009.“Home - REN21.” [Online]. Available: http://www.ren21.net/. [Accessed: 05-May-2017].P. Gonçalves, V. Sampaio, M. Orestes, and A. González, “Photovoltaic solar energy : Conceptual framework,” vol. 74, no. December 2016, pp. 590–601, 2017.F. Corcelli, M. Ripa, and S. Ulgiati, “End-of-life treatment of crystalline silicon photovoltaic panels . An emergy-based case study,” J. Clean. Prod., 2017.REN21, “Energías renovables 2016. Reporte de la situación mundial,” 2016.Consorcio Energético CORPOEMA, “Plan de Desarrollo para las Fuentes no Convencionales de Energía en Colombia (PDFNCE),” Formulación un plan Desarro. para las fuentes no Conv. en Colomb. V1, vol. 1, pp. 25–28, 2010.“ACCIONA - Líder Mundial en Energía Renovable e Infraestructuras.” [Online]. Available: https://www.acciona.com/es/. [Accessed: 21- Jun-2017].M. A. Lamigueiro, Óscar Perpiñán, Antonio Colmenar, Diseño de sistemas fotovoltaicos. 2012.D. M. Morales, M. Cappelletti, G. Casas, W. Hasperue, and E. P. Y Blanca, “Estudio basado en Algoritmos Genticos de celdas solares expuestas a radiación,” 2016 IEEE Bienn. Congr. Argentina, ARGENCON 2016, pp. 1–5, 2016.Anónimo, “Componentes de una instalación solar fotovoltaica,” 2012.Grupo Simec Chile SRL, “Analisis de un Sistema e Iluminacion, utilizando ampolletas de bajo Consumo y alimentado por paneles fotovoltaicos,” vol. 1, p. 138, 2010.E. E. Granda-Gutiérrez, O. A. Orta-Salomón, J. C. Díaz-Guillén, M. A. Jimenez, M. Osorio, and M. A. González, “Modelado y Simulacion de Celdas y Paneles Solares. ISSN:1405-2172,” Congr. Int. Ing. Electrón. Mem. Electro 2013, no. October, pp. 17–22, 2013.C. E. C. Nogueira, J. Bedin, R. K. Niedzialkoski, S. N. M. De Souza, and J. C. M. Das Neves, “Performance of monocrystalline and polycrystalline solar panels in a water pumping system in Brazil,” Renew. Sustain. Energy Rev., vol. 51, pp. 1610–1616, 2015.Ente Vasco, “La Energia Solar Fotovoltaica,” p. 90, 2000.K. H. Kapumpa and A. S. Virdi, “A Review Paper on Solar Photovoltaic Systems,” vol. 9, no. 41, pp. 43–52, 2016.A. Basnet, “Architectural Integration of Photovoltaic and Solar Thermal Collector Systems into buildings,” Master’s Thesis, no. June, 2012.M. Mirzaei and M. Z. Mohiabadi, “A comparative analysis of long-term field test of monocrystalline and polycrystalline PV power generation in semi arid climate conditions,” Energy Sustain. Dev., vol. 38, pp. 93–101, 2017.S. 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