Desarrollo de una arquitectura de monitoreo y supervisión para sistemas fotovoltaicos en el Archipiélago de San Andrés islas

dc.contributor.advisorRosero Garcìa , Javier Albeiro
dc.contributor.advisorBaquero Rozo, Giovanny Aldemar
dc.contributor.authorGómez Pèrez, Billy Javier
dc.contributor.orcidGomez Perez , Billy Javier [0009000745520834]
dc.contributor.researchgroupElectrical Machines & Drives, Em&D
dc.date.accessioned2026-02-10T16:47:43Z
dc.date.available2026-02-10T16:47:43Z
dc.date.issued2025
dc.descriptionIlustraciones, diagramas, gráficosspa
dc.description.abstractEl crecimiento reciente en el despliegue de sistemas fotovoltaicos y la mayor escala de su producción hacen necesarios cambios contundentes en la forma de operar y administrar las redes eléctricas mitigando el impacto ambiental y garantizando un desarrollo sostenible en él tiempo de los sistemas fotovoltaicos. Se propone una arquitectura de monitoreo y supervisión que proporcionará el estado de los sistemas mostrando posibles degradaciones y fallas inminentes del sistema. Incentiva a mantener la calidad del sistema y garantiza un rendimiento óptimo del sistema durante su vida útil. La presente investigación tiene como fin estructurar una propuesta de arquitectura de un sistema capaz de brindar información sobre el funcionamiento de un sistema fotovoltaico. La herramienta también permite la identificación y monitorización de diversos parámetros para la depuración de errores en los equipos por medio de parámetros ambientales proporcionados por las estaciones metrológicas del sistema, información de estado e información eléctrica en base a la norma IEC 61724-1; cuantificando y proporcionando una revisión de las pautas y estándares para monitorear el desempeño y la degradación de los sistemas fotovoltaicos en la práctica, la interacción con los usuarios por medio de P2P y el monitoreo de la transacción de la energía. (Texto tomado de la fuente)spa
dc.description.abstractThe recent growth in the deployment of photovoltaic systems and the expansion of their production, make drastic necessary changes in the operation and management of electricity networks. These changes aim to mitigate the environmental impact and ensure sustainable development over time of photovoltaic systems. Based on this, a monitoring and supervision architecture is proposed that will allow to assess the state of the systems, which identify possible degradations and failures within it. This architecture encourages maintaining the quality of the system and ensures optimal performance throughout its lifetime. The present research aims to structure an architecture proposal for a system capable of providing information on the operation of a photovoltaic system. In addition, this tool allows the identification and monitoring of various parameters for debugging errors on equipment. This is achieved by analyzing environmental parameters provided by the system’s meteorological stations, as well as status and electrical information based on IEC 61724-1. These are also quantified and provide a review of the guidelines and standards for monitoring the performance and degradation of PV systems in practice, including interaction with users through P2P technology and energy transaction monitoring.eng
dc.description.degreelevelMaestría
dc.description.degreenameMagister en Ingeniería Eléctrica
dc.description.researchareaSistemas de Generación de Energía Renovable e Integración a Redes Inteligentes (Smart Grid)
dc.format.extentxv, 112 páginas
dc.format.mimetypeapplication/pdf
dc.identifier.instnameUniversidad Nacional de Colombiaspa
dc.identifier.reponameRepositorio Institucional Universidad Nacional de Colombiaspa
dc.identifier.repourlhttps://repositorio.unal.edu.co/spa
dc.identifier.urihttps://repositorio.unal.edu.co/handle/unal/89454
dc.language.isospa
dc.publisherUniversidad Nacional de Colombia
dc.publisher.branchUniversidad Nacional de Colombia - Sede Bogotá
dc.publisher.facultyFacultad de Ingeniería
dc.publisher.placeBogotá, Colombia
dc.publisher.programBogotá - Ingeniería - Maestría en Ingeniería - Ingeniería Eléctrica
dc.relation.referencesThe recent growth in the deployment of photovoltaic systems and the expansion of their production, make drastic necessary changes in the operation and management of electricity networks. These changes aim to mitigate the environmental impact and ensure sustainable development over time of photovoltaic systems. Based on this, a monitoring and supervision architecture is proposed that will allow to assess the state of the systems, which identify possible degradations and failures within it. This architecture encourages maintaining the quality of the system and ensures optimal performance throughout its lifetime. The present research aims to structure an architecture proposal for a system capable of providing information on the operation of a photovoltaic system. In addition, this tool allows the identification and monitoring of various parameters for debugging errors on equipment. This is achieved by analyzing environmental parameters provided by the system’s meteorological stations, as well as status and electrical information based on IEC 61724-1. These are also quantified and provide a review of the guidelines and standards for monitoring the performance and degradation of PV systems in practice, including interaction with users through P2P technology and energy transaction monitoring.
dc.relation.referencesAntonopoulos, A. M. (2014). Mastering Bitcoin: unlocking digital cryptocurrencies. “ O’Reilly Media, Inc.”.
dc.relation.referencesBruce, A., & Calais, M. (2013). Australian Technical Guidelines for Monitoring and Analysing Photovoltaic Systems. https://doi.org/10.13140/RG.2.1.2711.6884
dc.relation.referencesCao, Y. (2019). Energy Internet blockchain technology. The Energy Internet: An Open Energy Platform to Transform Legacy Power Systems into Open Innovation and Global Economic Engines, 45–64. https://doi.org/10.1016/B978-0-08-102207-8.00003-5
dc.relation.referencesCEN/CENELEC/ETSI. (2012). Smart Grid Coordination Group “Smart Grid Reference Architecture.”
dc.relation.referencesChitchyan, R., & Murkin, J. (2018). Review of Blockchain Technology and its Expectations: Case of the Energy Sector. http://arxiv.org/abs/1803.03567
dc.relation.referencesDaniel García Guzmán. (2018). Potential of Blockchain Technology in the Electricity Market.
dc.relation.referencesDario J Mosquera P. (2019, December). Recursos Energéticos Distribuidos Como Elemento Integrador En Los Sistemas De Energía Eléctrica. Universidad Distrital Francisco José de Caldas-Facultad Tecnológica.
dc.relation.referencesDufay Benitez Ramirez, Y. (2017). Metodología de diseño conceptual de la automatización de red de distribución de energía que permita la integración de recursos energéticos distribuidos (DER) e implementación de estrategias de gestión de demanda (DSM).
dc.relation.referencesEjgar, M., & Momin, B. (2018). Solar plant monitoring system: A review. Proceedings of the International Conference on Computing Methodologies and Communication, ICCMC 2017, 2018-January, 1142–1144. https://doi.org/10.1109/ICCMC.2017.8282652
dc.relation.referencesEPRI. (2024). Smart Grid Resource Center. Smart Grid Resource Center
dc.relation.referencesFarell, R. (2015). An Analysis of the Cryptocurrency Industry.
dc.relation.referencesGottschalk, M., Uslar, M., & Delfs, C. (2017). Tool-Support – A Use Case Management Repository. In M. Gottschalk, M. Uslar, & C. Delfs (Eds.), The Use Case and Smart Grid Architecture Model Approach: The IEC 62559-2 Use Case Template and the SGAM applied in various domains (pp. 63–69). Springer International Publishing. https://doi.org/10.1007/978-3-319-49229-2_4
dc.relation.referencesGrid, C. N.-J. R. C. for U.-C. S., & 2013, undefined. (2014). Introduction to the SGAM Toolbox. Sgam-Toolbox.Org. https://sgam-toolbox.org/downloads/Introduction-to-SGAM-Toolbox.pdf
dc.relation.referencesGridPlus. (2024). GridPlus. “Grid+.” https://gridplus.io
dc.relation.referencesGuerra Posada, F. (2017). Manual for People Interested in Becoming Prosumers of Energy from Solar Panels in Colombia.
dc.relation.referencesHenry Díaz, J. (2024). (2024). Study of the Monitoring and Supervision Architecture of Smart Grid Technologies for Implementation in Renewable Energy Projects on the Island of San Andrés.
dc.relation.referencesIEC - European Commission. (2021). Bridge Use Case Repository. http://www.europa.eu
dc.relation.referencesIEC - International Electrotechnical Commission. (2021). IEC - SyC Smart Energy: Smart_Grid_Architecture_Model_SGAM_Source_Scheme_neutral. https://www.iec.ch/dyn/www/f?p=103%3A252%3A8373300529540%3A%3A%3A%3AFSP_ORG_ID%2CFSP_LANG_ID%3A11825%2C25
dc.relation.referencesIEC 61724. (n.d.). International Standard IEC 61724-1.0: Photovoltaic system performance - Part 1: Monitoring.
dc.relation.referencesIEC 61724-1_2021. (2021). INTERNATIONAL STANDARD NORME INTERNATIONALE Photovoltaic system performance-Part 1. www.iec.ch
dc.relation.referencesIEC TR 62559-1. (2019). TECHNICAL REPORT - RAPPORT TECHNIQUE. https://standards.iteh.ai/catalog/standards/sist/0a0c8c26-1ab9-4321-bd0d-
dc.relation.referencesIL Monroy. (2002). Electric Power Generation and the Environment.
dc.relation.referencesisa-INTERCOLOMBIA. (2024). Electric Power Transmission. https://www.isaintercolombia.com/transmision-de-energia-electrica/
dc.relation.referencesJ. Pastor. (2018). “What is blockchain: the definitive explanation for the hottest technology.” https://www.xataka.com/especiales/ que-es-blockchain-la-explicacion-definitiva-para-la-tecnologia-mas-de-moda
dc.relation.referencesJuan C. Salavarrieta, H. F. G. (2018). MONITOREO Y CONTROL DE CENTRALES DE GENERACIÓN ELÉCTRICA A TRAVES DE CONTROL CENTRALIZADO.
dc.relation.referencesKIPP & ZONEN. (2022). SOLAR ENERGY INTERNATIONAL STANDARDS. https://info.otthydromet.com/2007_CNT_OTT_c-met_ISO-IEC17025-solar-energy-standards_EN_19-LandingPage.html
dc.relation.referencesKube, N. (2018). Daniel Drescher: Blockchain basics: a non-technical introduction in 25 steps. Financial Markets and Portfolio Management, 32(3), 329–331. https://doi.org/10.1007/s11408-018-0315-6
dc.relation.referencesKuchenbuch, R., Schütz, J., & Sauer, J. (2023). Quality properties of IEC 62559 use cases and SGAM models. Energy Informatics, 6. https://doi.org/10.1186/S42162-023-00280-5
dc.relation.referencesKurose, J. F., & Ross, K. W. (2017). Computer networking : a top-down approach (7th ed.). L. Kawulok, K. Z. and M. J. "Trusted group membership service for J. (JXTA4J2ME), " W. (2005). Trusted group membership service for JXME (JXTA4J2ME).
dc.relation.referencesLey 142. (1994). Ministry of Mines and Energy. https://normativame.minenergia.gov.co/normatividad/6059/norma/
dc.relation.referencesLey 143. (1994). Ministry of Mines and Energy. https://normativame.minenergia.gov.co/normatividad/6059/norma/
dc.relation.referencesLO3 Energy. (2024, March). LO3 Energy. https://lo3energy.com
dc.relation.referencesM. Gayo. (2019). Use of blockchain technology in energy exchanges in microgrids.
dc.relation.referencesMinistry of Mines and Energy - Mining and Energy Planning Unit (UPME). (n.d.). Invest and Earn with Energy: Practical Guide for Applying the Tax Incentives of Law 1715 of 2014.
dc.relation.referencesNakamoto, S. (2009). Bitcoin: A Peer-to-Peer Electronic Cash System. www.bitcoin.org
dc.relation.referencesNational Institute of Standards and Technology - NIST. (2010). NIST Special Publication 1108 NIST Framework and Roadmap for Smart Grid Interoperability Standards, Release 1.0.
dc.relation.referencesNational Institute of Standards and Technology - NIST. (2018). Update of the NIST Smart Grid Conceptual Model. http://documents.dps.ny.gov/public/Common/ViewDoc.aspx?DocRefId=%7B8FF8D6D6-7E2B-4D83-9B9C-
dc.relation.referencesNeureiter, C. (2014). Introduction to the “SGAM Toolbox.” www.en-trust.at
dc.relation.referencesPearsall, N. M. (2017). Prediction and measurement of photovoltaic system energy yield. The Performance of Photovoltaic (PV) Systems: Modelling, Measurement and Assessment, 183–208. https://doi.org/10.1016/B978-1-78242-336-2.00006-9
dc.relation.referencesRepsol. (2024). What are Smart Grids? https://www.repsol.com/es/energia-futuro/tecnologia-innovacion/smart-grids/index.cshtml
dc.relation.referencesRicardo, M., Duque, C., Jaime, C., & Cardona, F. (2020). Impacto del esquema del mercado P2P en el mercado eléctrico colombiano. https://repositorio.unal.edu.co/handle/unal/78430
dc.relation.referencesSayed, K., & Gabbar, H. A. (2017). SCADA and smart energy grid control automation. Smart Energy Grid Engineering, 481–514. https://doi.org/10.1016/B978-0-12-805343-0.00018-8
dc.relation.referencesShen, X. , Y. H., & Buford, J. , & A. M. (2009). Handbook of peer-to-peer networking.
dc.relation.referencesSilva, R. (2019). DEVELOPMENT OF A BLOCKCHAIN APPLICATION FOR DISTRIBUTED GENERATION PROJECTS IN CHILE.
dc.relation.referencesSPARX SYSTEM. (2024). UML modeling tools for Business, Software, Systems and Architecture. https://sparxsystems.com/
dc.relation.referencesSUI Portal | Superintendency of Residential Public Services. (2022). Sector reports | SUI Portal | Superintendency of Residential Public Services. https://sui.superservicios.gov.co/Reportes/Filtro?field_sspd_sui_reporte_entidad_value=3&field_sspd_sui_reporte_categoria_value=0
dc.relation.referencesTodó Bañuls, J. (2017). Microgrid with Blockchain Technology and Photosynthetic Energy Source.
dc.relation.referencesTyagi, A., Dubey, M., & Gawre, S. (2018). Advance Monitoring of Electrical and Environmental Parameters of PV System.
dc.relation.referencesUNAL-EEDAS. (2019). Architectures for the implementation of smart systems on islands.
dc.relation.referencesVelandia, C., & Energéticos, M. (2023). GESTIÓN DE TRANSACCIONES PEER-TO-PEER DE CRÉDITOS DE ENERGÍA. Red.Uao.Edu.Co. https://red.uao.edu.co/bitstream/handle/10614/15064/T10813_Gesti%C3%B3n%20de%20transacciones%20Peer-to-Peer%20de%20cr%C3%A9ditos%20de%20energ%C3%ADa%20entre%20prosumidores.pdf?sequence=2
dc.relation.referencesWePower. (2024). WePower. “We Power.” https://wepower.network
dc.rights.accessrightsinfo:eu-repo/semantics/openAccess
dc.rights.licenseAtribución-CompartirIgual 4.0 Internacional
dc.rights.urihttp://creativecommons.org/licenses/by-sa/4.0/
dc.subject.blaaRedes eléctricas inteligentesspa
dc.subject.blaaSmart electrical gridseng
dc.subject.blaaGeneración distribuida de energía eléctricaspa
dc.subject.bneSistemas de supervisión automáticaspa
dc.subject.ddc660 - Ingeniería química
dc.subject.lembGeneración de energía fotovoltaicaspa
dc.subject.lembPhotovoltaic power generationeng
dc.subject.proposalIEC 61724 1spa
dc.subject.proposalArquitecturas pvspa
dc.subject.proposalSistemas pv monitoreospa
dc.subject.proposalSupervisiónspa
dc.subject.proposalRendimientospa
dc.subject.proposalTransacción de energíaspa
dc.subject.proposalPv architectureseng
dc.subject.proposalPv systems monitoringeng
dc.subject.proposalSupervisioneng
dc.subject.proposalPerformanceeng
dc.subject.proposalEnergy transactioneng
dc.subject.proposalIEC 61724 1eng
dc.titleDesarrollo de una arquitectura de monitoreo y supervisión para sistemas fotovoltaicos en el Archipiélago de San Andrés islasspa
dc.title.translatedDevelopment of a monitoring and supervision architecture for photovoltaic systems in the San Andres island Archipelagoeng
dc.typeTrabajo de grado - Maestría
dc.type.coarhttp://purl.org/coar/resource_type/c_bdcc
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aa
dc.type.contentText
dc.type.driverinfo:eu-repo/semantics/masterThesis
dc.type.redcolhttp://purl.org/redcol/resource_type/TM
dc.type.versioninfo:eu-repo/semantics/acceptedVersion
dcterms.audience.professionaldevelopmentInvestigadores
dcterms.audience.professionaldevelopmentBibliotecarios
dcterms.audience.professionaldevelopmentEstudiantes
dcterms.audience.professionaldevelopmentPúblico general
dcterms.audience.professionaldevelopmentMaestros
oaire.accessrightshttp://purl.org/coar/access_right/c_abf2

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
Desarrollo de una arquitectura de monitoreo y supervision para sistemas fotovoltaicos en el archipielago de san andres.pdf
Tamaño:
3.25 MB
Formato:
Adobe Portable Document Format

Bloque de licencias

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
license.txt
Tamaño:
5.74 KB
Formato:
Item-specific license agreed upon to submission
Descripción: