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ePV-Trainer: Software for dimensioning stand-alone and grid-connected photovoltaic systems for educational purposes
dc.creator | Osuna D.E. | spa |
dc.creator | Castro C. | spa |
dc.creator | Arredondo C.A. | spa |
dc.creator | Luna M.A. | spa |
dc.creator | Villegas S. | spa |
dc.creator | Mejías N.Y. | spa |
dc.creator | Orozco E.E. | spa |
dc.creator | Hernández J. | spa |
dc.date.accessioned | 2017-12-19T19:36:49Z | |
dc.date.available | 2017-12-19T19:36:49Z | |
dc.date.created | 2017 | |
dc.identifier.issn | 2632241 | |
dc.identifier.uri | http://hdl.handle.net/11407/4347 | |
dc.description.abstract | ePV-Trainer is a user-friendly desktop application that allows users to dimension stand-alone and grid-connected photovoltaic systems. In addition, data on any geographic location in the world can be uploaded to the platform. The aim of this paper is to describe and assess the operation of the software developed in LabVIEW™. The study concludes with practical examples to verify that data delivered by the program match the one executed on manual calculations. The result is an intuitive software, which also allows to estimate the electricity generation of photovoltaic systems, based on real parameters of solar radiation and temperature. The software has been developed for educational purposes. © 2017 Elsevier Ltd. | eng |
dc.language.iso | eng | |
dc.publisher | Elsevier B.V. | spa |
dc.relation.isversionof | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85027862786&doi=10.1016%2fj.measurement.2017.08.026&partnerID=40&md5=ec223fe27ff72dc9ffb37bc6c19c6db2 | spa |
dc.source | Scopus | spa |
dc.title | ePV-Trainer: Software for dimensioning stand-alone and grid-connected photovoltaic systems for educational purposes | spa |
dc.type | Article | eng |
dc.rights.accessrights | info:eu-repo/semantics/restrictedAccess | |
dc.contributor.affiliation | Osuna, D.E., Energy Engineering Program, Universidad Politécnica de Sinaloa, Mazatlán, Mexico | spa |
dc.contributor.affiliation | Castro, C., Energy Engineering Program, Universidad Politécnica de Sinaloa, Mazatlán, Mexico | spa |
dc.contributor.affiliation | Arredondo, C.A., Renewable Energy Research Group (GRINEN), Faculty of Engineering, Energy Engineering Program, Universidad de Medellin, Medellin, Colombia | spa |
dc.contributor.affiliation | Luna, M.A., Renewable Energy Research Group (GRINEN), Faculty of Engineering, Energy Engineering Program, Universidad de Medellin, Medellin, Colombia | spa |
dc.contributor.affiliation | Villegas, S., Renewable Energy Research Group (GRINEN), Faculty of Engineering, Energy Engineering Program, Universidad de Medellin, Medellin, Colombia | spa |
dc.contributor.affiliation | Mejías, N.Y., Energy Engineering Program, Universidad Politécnica de Sinaloa, Mazatlán, Mexico | spa |
dc.contributor.affiliation | Orozco, E.E., Energy Engineering Program, Universidad Politécnica de Sinaloa, Mazatlán, Mexico | spa |
dc.contributor.affiliation | Hernández, J., LIFAE, Faculty of Engineering, Universidad Distrital Francisco José de Caldas, Bogota, Colombia | spa |
dc.identifier.doi | 10.1016/j.measurement.2017.08.026 | |
dc.subject.keyword | Dimensioning | eng |
dc.subject.keyword | Educational | eng |
dc.subject.keyword | Grid-connected systems | eng |
dc.subject.keyword | Payback period | eng |
dc.subject.keyword | Photovoltaic | eng |
dc.subject.keyword | Stand-alone systems | eng |
dc.subject.keyword | Investments | eng |
dc.subject.keyword | Photovoltaic cells | eng |
dc.subject.keyword | Solar power generation | eng |
dc.subject.keyword | Dimensioning | eng |
dc.subject.keyword | Educational | eng |
dc.subject.keyword | Grid connected systems | eng |
dc.subject.keyword | Payback periods | eng |
dc.subject.keyword | Photovoltaic | eng |
dc.subject.keyword | Standalone systems | eng |
dc.subject.keyword | Computer programming languages | eng |
dc.publisher.faculty | Facultad de Ingenierías | spa |
dc.abstract | ePV-Trainer is a user-friendly desktop application that allows users to dimension stand-alone and grid-connected photovoltaic systems. In addition, data on any geographic location in the world can be uploaded to the platform. The aim of this paper is to describe and assess the operation of the software developed in LabVIEW™. The study concludes with practical examples to verify that data delivered by the program match the one executed on manual calculations. The result is an intuitive software, which also allows to estimate the electricity generation of photovoltaic systems, based on real parameters of solar radiation and temperature. The software has been developed for educational purposes. © 2017 Elsevier Ltd | eng |
dc.creator.affiliation | Energy Engineering Program, Universidad Politécnica de Sinaloa, Mazatlán, Mexico | spa |
dc.creator.affiliation | Renewable Energy Research Group (GRINEN), Faculty of Engineering, Energy Engineering Program, Universidad de Medellin, Medellin, Colombia | spa |
dc.creator.affiliation | LIFAE, Faculty of Engineering, Universidad Distrital Francisco José de Caldas, Bogota, Colombia | spa |
dc.relation.ispartofes | Measurement: Journal of the International Measurement Confederation | spa |
dc.relation.references | Enríquez, G., Instalaciones y sistemas fotovoltaicos (2014), pp. 3-12. , Editorial Limusa México | spa |
dc.relation.references | Labouret, A., Villoz, M., (2008), pp. 11-27. , Energía solar fotovoltaica, Manual práctico, La energía solar fotovoltaica: Conceptos básicos, A. Madrid Vicente Ediciones y Mundi-Prensa Libros S.A, Madrid | spa |
dc.relation.references | PVSYST, Photovoltaic Software, Website to download PVSYST software (2012), http://www.pvsyst.com/en/order/prices/, Accessed: 12.12.2015 | spa |
dc.relation.references | Natural Resources Canada, Website to download RETScreen software (2014), http://www.retscreen.net/es/home.php/, Accessed 13.12. 2015 | spa |
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dc.relation.references | Lorenzo, E., (2006), pp. 12-27. , Radiación solar y dispositivos fotovoltaicos vol. II, La célula solar (I), Progensa, Sevilla | spa |
dc.relation.references | Battista, P., Rapi, B., Romani, M., (2015), http://www.biofuturo.net/en/papers.html, «Solar radiation estimation (software modules): Theory,» Biofuturo, 2007. [Online]. Available: (Last access: December 13) | spa |
dc.relation.references | Moreno-Saez, R., Mora-Lopez, L., Modelling the distribution of solar spectral irradiance using data mining techniques (2014) Environ. Modell. Softw., 53, pp. 163-172 | spa |
dc.relation.references | Huld, T.A., Suri, M., Dunlop, E.D., Micale, F., Estimating average daytime and daily temperature profiles within Europe (2006) Environ. Modell. Softw., 21 (12), pp. 1650-1661 | spa |
dc.relation.references | Vasisht, M.S., Srinivasan, J., Ramasesha, S.K., Performance of solar photovoltaic installations: Effect of seasonal variations (2016) Sol. Energy, 131, pp. 39-46 | spa |
dc.relation.references | Lesourd, J.B., Solar photovoltaic systems: the economics of a renewable energy resource (2001) Environ. Modell. Softw., 16 (2), pp. 147-156 | spa |
dc.relation.references | Bakhshi, R., Sadeh, J., A comprehensive economic analysis method for selecting the PV array structure in grid-connected photovoltaic systems (2016) Renew. Energy, 94, pp. 524-536 | spa |
dc.relation.references | Insolation incident on a horizontal Surface (kWh/m2/day) data (2008), http://eosweb.larc.nasa.gov/sse/, Accessed 13.12.2015 | spa |
dc.relation.references | (2008), http://eosweb.larc.nasa.gov/sse/, «Insolation Incident On A Horizontal Surface (kWh, m^2, day),» NASA, Junio [En línea], Available: (Accessed: 13.12.2015) | spa |
dc.type.version | info:eu-repo/semantics/publishedVersion | |
dc.type.driver | info:eu-repo/semantics/article | |
dc.identifier.reponame | reponame:Repositorio Institucional Universidad de Medellín | spa |
dc.identifier.instname | instname:Universidad de Medellín | spa |
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