Estrategia de control para compartir potencia reactiva y regular tensión en micro redes operando en modo autónomo

dc.contributor.advisorCandelo-Becerra, John Edwinspa
dc.contributor.advisorHoyos-Velasco, Fredy Edimerspa
dc.contributor.authorMolina-Viloria, Eder Alexanderspa
dc.contributor.researchgroupGRUPO DE INVESTIGACIÓN EN TECNOLOGÍAS APLICADAS - GITAspa
dc.date.accessioned2020-04-14T17:26:23Zspa
dc.date.available2020-04-14T17:26:23Zspa
dc.date.issued2019spa
dc.description.abstractThe objective of this thesis is to develop control strategies for distributed generation (DG) systems, that allows to achieve reactive power sharing and regulate voltage in microgrids operated autonomously. The proposed control strategies present different alternatives to improve reactive power sharing among DGs that conform the microgrid and to regulate the voltage in the nodes. Thus, it is possible to contribute to the overcoming problems caused by the continuous connection and disconnection of power loads, avoiding DG tripping under this situation. The scope of the proposed strategies covers a wide range of possibilities, from regulating voltage in the nodes of the microgrid based on electric vehicle connection and disconnection, to urban and rural residential loads. The usefulness of these control strategies is focused on DG systems that operate in isolated mode with great integration of renewables, mainly located in remote areas. Therefore, in this research we worked on the comparison of both the consumption of rural and urban communities to obtain different load variations to test the control strategy in the microgrid. The control strategies included in this research are: virtual RMS voltage, variable virtual impedance, virtual current, and virtual voltage.eng
dc.description.abstractEl objetivo de esta tesis es desarrollar una estrategias de control para los sistemas de generación distribuida (DG), que permitan lograr compartir la potencia reactiva y regular el voltaje en las microrredes operadas de manera autónoma. Las estrategias de control propuestas presentan diferentes alternativas para mejorar la compartición de potencia reactiva entre las diferente DG que conforman la microrred y para regular el voltaje en los nodos. Por lo tanto, es posible contribuir a la superación de los problemas causados por la conexión y desconexión continua de las cargas, evitando el disparo de DG en esta situación. El alcance de las estrategias propuestas cubre una amplia gama de posibilidades, desde la regulación del voltaje en los nodos de la microrred basada en la conexión y desconexión del vehículo eléctrico, hasta las cargas residenciales urbanas y rurales. La utilidad de estas estrategias de control se centra en los sistemas de DG que funcionan en modo autónomo con una gran integración de energías renovables, principalmente ubicadas en áreas remotas. Por lo tanto, en esta investigación trabajamos en la comparación del consumo de las comunidades rurales y urbanas para obtener diferentes variaciones de cargas para probar la estrategia de control en la microrred. Las estrategias de control incluidas en esta investigación son: voltaje RMS virtual, impedancia virtual variable, corriente virtual y voltaje virtual.spa
dc.description.additionalThesis presented as a partial requirement to obtain the title of: Doctor en Ingeniería - Línea de Investigación en Automática.spa
dc.description.degreelevelDoctoradospa
dc.description.sponsorshipColcienciasspa
dc.format.extent177spa
dc.format.mimetypeapplication/pdfspa
dc.identifier.urihttps://repositorio.unal.edu.co/handle/unal/77416
dc.language.isoengspa
dc.publisher.branchUniversidad Nacional de Colombia - Sede Manizalesspa
dc.publisher.departmentDepartamento de Ingeniería Eléctrica y Electrónicaspa
dc.relation.referencesRashad M. Kamel*, Aymen Chaouachi, Ken Nagasaka: Wind power smoothing using fuzzy logic pitch controller and energy capacitor system for improvement Micro-Grid performance in islanding mode,” Energy, vol. 35, no. 5, pp. 2119–2129, May 2010. M. Tasdighi, H. Ghasemi, and A. Rahimi-Kian, “Residential Microgrid Scheduling Based on Smart Meters Data and Temperature Dependent Thermal Load Modeling,” IEEE Trans. Smart Grid, vol. 5, no. 1, pp. 349–357, Jan. 2014. A. Bidram and A. Davoudi, “Hierarchical Structure of Microgrids Control System,” IEEE Trans. Smart Grid, vol. 3, no. 4, pp. 1963–1976, Dec. 2012. S. V. Iyer, M. N. Belur, and M. C. Chandorkar, “A Generalized Computational Method to Determine Stability of a Multi-inverter Microgrid,” IEEE Trans. Power Electron., vol. 25, no. 9, pp. 2420–2432, Sep. 2010. T. S. Ustun, C. Ozansoy, and A. Ustun, “Fault current coefficient and time delay assignment for microgrid protection system with central protection unit,” IEEE Trans. Power Syst., vol. 28, no. 2, pp. 598–606, May 2013. T. Dragicevic, J. M. Guerrero, and J. C. Vasquez, “A Distributed Control Strategy for Coordination of an Autonomous LVDC Microgrid Based on Power-Line Signaling,” IEEE Trans. Ind. Electron., vol. 61, no. 7, pp. 3313–3326, Jul. 2014. J. Rocabert, A. Luna, F. Blaabjerg, and P. Rodríguez, “Control of Power Converters in AC Microgrids,” IEEE Trans. Power Electron., vol. 27, no. 11, pp. 4734–4749, Nov. 2012. F. Blaabjerg, R. Teodorescu, M. Liserre, and A. V. Timbus, “Overview of Control and Grid Synchronization for Distributed Power Generation Systems,” IEEE Trans. Ind. Electron., vol. 53, no. 5, pp. 1398–1409, Oct. 2006. J. A. P. Lopes, C. L. Moreira, and A. G. Madureira, “Defining Control Strategies for MicroGrids Islanded Operation,” IEEE Trans. Power Syst., vol. 21, no. 2, pp. 916–924, May 2006. “Review of primary control strategies for islanded microgrids with power-electronic interfaces,” Renew. Sustain. Energy Rev., vol. 19, pp. 613–628, Mar. 2013. J. W. Simpson-Porco, Q. Shafiee, F. Dorfler, J. C. Vasquez, J. M. Guerrero, and F. Bullo, “Secondary Frequency and Voltage Control of Islanded Microgrids via Distributed Averaging,” IEEE Trans. Ind. Electron., vol. 62, no. 11, pp. 7025–7038, Nov. 2015. Yun Wei Li and Ching-Nan Kao, “An Accurate Power Control Strategy for Power-Electronics-Interfaced Distributed Generation Units Operating in a Low-Voltage Multibus Microgrid,” IEEE Trans. Power Electron., vol. 24, no. 12, pp. 2977–2988, Dec. 2009. J. M. Guerrero, M. Chandorkar, T.-L. Lee, and P. C. Loh, “Advanced Control Architectures for Intelligent Microgrids—Part I: Decentralized and Hierarchical Control,” IEEE Trans. Ind. Electron., vol. 60, no. 4, pp. 1254–1262, Apr. 2013. T. L. Vandoorn, J. C. Vasquez, J. De Kooning, J. M. Guerrero, and L. Vandevelde, “Microgrids: Hierarchical Control and an Overview of the Control and Reserve Management Strategies,” IEEE Ind. Electron. Mag., vol. 7, no. 4, pp. 42–55, Dec. 2013. J. Kim, J. M. Guerrero, P. Rodriguez, R. Teodorescu, and K. Nam, “Mode Adaptive Droop Control With Virtual Output Impedances for an Inverter-Based Flexible AC Microgrid,” IEEE Trans. Power Electron., vol. 26, no. 3, pp. 689–701, Mar. 2011. Q.-C. Zhong, “Robust Droop Controller for Accurate Proportional Load Sharing Among Inverters Operated in Parallel,” IEEE Trans. Ind. Electron., vol. 60, no. 4, pp. 1281–1290, Apr. 2013. A. Micallef, M. Apap, C. Spiteri-Staines, J. M. Guerrero, and J. C. Vasquez, “Reactive Power Sharing and Voltage Harmonic Distortion Compensation of Droop Controlled Single Phase Islanded Microgrids,” IEEE Trans. Smart Grid, vol. 5, no. 3, pp. 1149–1158, May 2014. Q. Shafiee, J. M. Guerrero, and J. C. Vasquez, “Distributed Secondary Control for Islanded Microgrids; A Novel Approach,” IEEE Trans. Power Electron., vol. 29, no. 2, pp. 1018–1031, Feb. 2014. Q. Shafiee, C. Stefanovic, T. Dragicevic, P. Popovski, J. C. Vasquez, and J. M. Guerrero, “Robust Networked Control Scheme for Distributed Secondary Control of Islanded Microgrids,” IEEE Trans. Ind. Electron., vol. 61, no. 10, pp. 5363–5374, Oct. 2014. R.H.Lasseter, “MicroGrids,” pp. 305–308, 2002. F. Katiraei and M. R. Iravani, “Power Management Strategies for a Microgrid With Multiple Distributed Generation Units,” IEEE Trans. Power Syst., vol. 21, no. 4, pp. 1821–1831, Nov. 2006. N. Pogaku, M. Prodanovic, and T. C. Green, “Modeling, Analysis and Testing of Autonomous Operation of an Inverter-Based Microgrid,” IEEE Trans. Power Electron., vol. 22, no. 2, pp. 613–625, Mar. 2007. J. W. Simpson-Porco, Q. Shafiee, F. Dorfler, J. C. Vasquez, J. M. Guerrero, and F. Bullo, “Secondary Frequency and Voltage Control of Islanded Microgrids via Distributed Averaging,” IEEE Trans. Ind. Electron., vol. 62, no. 11, pp. 7025–7038, Nov. 2015. Yun Wei Li and Ching-Nan Kao, “An Accurate Power Control Strategy for Power-Electronics-Interfaced Distributed Generation Units Operating in a Low-Voltage Multibus Microgrid,” IEEE Trans. Power Electron., vol. 24, no. 12, pp. 2977–2988, Dec. 2009. J. Rocabert, A. Luna, F. Blaabjerg, and P. Rodríguez, “Control of Power Converters in AC Microgrids,” IEEE Trans. Power Electron., vol. 27, no. 11, pp. 4734–4749, Nov. 2012. T. L. Vandoorn, J. C. Vasquez, J. De Kooning, J. M. Guerrero, and L. Vandevelde, “Microgrids: Hierarchical Control and an Overview of the Control and Reserve Management Strategies,” IEEE Ind. Electron. Mag., vol. 7, no. 4, pp. 42–55, Dec. 2013. J. Kim, J. M. Guerrero, P. Rodriguez, R. Teodorescu, and K. Nam, “Mode Adaptive Droop Control With Virtual Output Impedances for an Inverter-Based Flexible AC Microgrid,” IEEE Trans. Power Electron., vol. 26, no. 3, pp. 689–701, Mar. 2011. J. A. P. Lopes, C. L. Moreira, and A. G. Madureira, “Defining Control Strategies for MicroGrids Islanded Operation,” IEEE Trans. Power Syst., vol. 21, no. 2, pp. 916–924, May 2006. Q.-C. Zhong, “Robust Droop Controller for Accurate Proportional Load Sharing Among Inverters Operated in Parallel,” IEEE Trans. Ind. Electron., vol. 60, no. 4, pp. 1281–1290, Apr. 2013. H. Han, Y. Liu, Y. Sun, M. Su, and J. M. Guerrero, “An Improved Droop Control Strategy for Reactive Power Sharing in Islanded Microgrid,” IEEE Trans. Power Electron., vol. 30, no. 6, pp. 3133–3141, Jun. 2015. A. Micallef, M. Apap, C. Spiteri-Staines, J. M. Guerrero, and J. C. Vasquez, “Reactive Power Sharing and Voltage Harmonic Distortion Compensation of Droop Controlled Single Phase Islanded Microgrids,” IEEE Trans. Smart Grid, vol. 5, no. 3, pp. 1149–1158, May 2014. Q. Shafiee, J. M. Guerrero, and J. C. Vasquez, “Distributed Secondary Control for Islanded Microgrids—A Novel Approach,” IEEE Trans. Power Electron., vol. 29, no. 2, pp. 1018–1031, Feb. 2014. J. M. Guerrero, J. C. Vasquez, J. Matas, L. G. de Vicuna, and M. Castilla, “Hierarchical Control of Droop-Controlled AC and DC Microgrids—A General Approach Toward Standardization,” IEEE Trans. Ind. Electron., vol. 58, no. 1, pp. 158–172, Jan. 2011. Y. Chen, A. Luo, J. Zhou, L. Bai, and C. Tu, “Rapid reactive power control method for parallel inverters using resistive-capacitive output impedance,” in 2013 1st International Future Energy Electronics Conference (IFEEC), 2013, pp. 98–102. M. Eskandari, L. Li, and M. H. Moradi, “Decentralized Optimal Servo Control System for Implementing Instantaneous Reactive Power Sharing in Microgrids,” IEEE Trans. Sustain. Energy, pp. 1–1, 2017. M. Kosari and S. H. Hosseinian, “Decentralized Reactive Power Sharing and Frequency Restoration in Islanded Microgrid,” IEEE Trans. Power Syst., vol. 32, no. 4, pp. 2901–2912, Jul. 2017. G. Lou, W. Gu, Y. Xu, M. Cheng, and W. Liu, “Distributed MPC-Based Secondary Voltage Control Scheme for Autonomous Droop-Controlled Microgrids,” IEEE Trans. Sustain. Energy, vol. 8, no. 2, pp. 792–804, Apr. 2017. K. De Brabandere, B. Bolsens, J. Van den Keybus, A. Woyte, J. Driesen, and R. Belmans, “A Voltage and Frequency Droop Control Method for Parallel Inverters,” IEEE Trans. Power Electron., vol. 22, no. 4, pp. 1107–1115, Jul. 2007. E. A. A. Coelho, P. C. Cortizo, and P. F. D. Garcia, “Small signal stability for single phase inverter connected to stiff AC system,” in Conference Record of the 1999 IEEE Industry Applications Conference. Thirty-Forspa
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dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.licenseAtribución-SinDerivadas 4.0 Internacionalspa
dc.rights.licenseAtribución-SinDerivadas 4.0 Internacionalspa
dc.rights.spaAcceso abiertospa
dc.rights.urihttp://creativecommons.org/licenses/by-nd/4.0/spa
dc.subject.ddc620 - Ingeniería y operaciones afinesspa
dc.subject.proposalCompartición de potencia reactivaspa
dc.subject.proposalReactive power sharingeng
dc.subject.proposalMicrogrideng
dc.subject.proposalMicrorredesspa
dc.subject.proposalVoltaje virtualspa
dc.subject.proposalVirtual voltageeng
dc.subject.proposalVirtual currenteng
dc.subject.proposalCorriente virtualspa
dc.subject.proposalRegulación de voltajespa
dc.subject.proposalVoltage controleng
dc.titleEstrategia de control para compartir potencia reactiva y regular tensión en micro redes operando en modo autónomospa
dc.title.alternativeControl strategy to share reactive power and regulate voltage in microgrids with autonomous mode operationspa
dc.typeTrabajo de grado - Maestríaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_bdccspa
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aaspa
dc.type.contentTextspa
dc.type.driverinfo:eu-repo/semantics/masterThesisspa
dc.type.versioninfo:eu-repo/semantics/acceptedVersionspa
oaire.accessrightshttp://purl.org/coar/access_right/c_abf2spa

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