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1Dissertation/ Thesis
المؤلفون: Cunill Solà, Jordi
المساهمون: University/Department: Universitat Politècnica de Catalunya. Departament d'Enginyeria Elèctrica
Thesis Advisors: Sainz Sapera, Luis
المصدر: TDX (Tesis Doctorals en Xarxa)
مصطلحات موضوعية: Lámpara fluorescente compacta, Armónicos en sistemas de potencia, Cargas no lineales, Calidad de potencia, Corriente de neutro, Compact fluorescent lamps, Power systems harmonics, Non-linear loads, Power quality, Neutral current, Àrees temàtiques de la UPC::Enginyeria elèctrica
Time: 621.3
وصف الملف: application/pdf
URL الوصول: http://hdl.handle.net/10803/461531
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2Dissertation/ Thesis
المؤلفون: Rodríguez Cortés, Pedro
المساهمون: University/Department: Universitat Politècnica de Catalunya. Departament d'Enginyeria Elèctrica
Thesis Advisors: Bergas Jané, Joan
المصدر: TDX (Tesis Doctorals en Xarxa)
مصطلحات موضوعية: electrónica de potencia, calidad de potencia, filtros activos, 3306. Enginyeria i tecnologia elèctrica - 3307. Tecnologia electrònica
Time: 621.3
وصف الملف: application/pdf
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3Academic Journal
المؤلفون: Garzón , Camilo, Blanco , Ana María, Pavas , Andrés, Meyer , Jan
المصدر: REVISTA UIS ENGENHARIAS; v. 23 n. 1 (2024): Revista UIS Ingenierías; 25-38 ; Revista UIS Ingenierías; Vol. 23 Núm. 1 (2024): Revista UIS Ingenierías; 25-38 ; Revista UIS Ingenierías; Vol. 23 No. 1 (2024): Revista UIS Ingenierías; 25-38 ; 2145-8456 ; 1657-4583
مصطلحات موضوعية: teorías de potencia, asignación de responsabilidades, calidad de potencia, perturbaciones, Power Theories, Responsibilities Assessment, Power Quality, Disturbances
وصف الملف: application/pdf
Relation: https://revistas.uis.edu.co/index.php/revistauisingenierias/article/view/15104/13338; https://revistas.uis.edu.co/index.php/revistauisingenierias/article/view/15104
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4Academic Journal
المؤلفون: Caicedo Navarro, Joaquín, Rivas, Edwin, Meyer, Jan
المصدر: Simposio Internacional sobre la Calidad de la Energía Eléctrica - SICEL; Vol. 11 (2023): XI SICEL 2023 ; 2357-6618
مصطلحات موضوعية: domain transformation, feature extraction, power quality, voltage sag, Electrical distribution systems, calidad de potencia, extracción de características, hueco de tensión, transformada de dominio, Sistemas de distribución radiales
وصف الملف: application/pdf
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5Dissertation/ Thesis
Thesis Advisors: De-la-Casa-Hernández, Jesús, Jurado-Melquizo, Francisco, Universidad de Jaén. Departamento de Ingeniería Eléctrica
المصدر: García-García, Óscar. Contribución al desarrollo tecnológico de la protección de generadores fotovoltaicos en condiciones de falta. 2013, 274 p. [http://hdl.handle.net/10953/544]
مصطلحات موضوعية: Calidad de Potencia, Faltas eléctricas, Fotovoltaico, Simulación, Sombras, Power Quality, Electric Faults, Photovoltaic, Simulation, Shadow
URL الوصول: http://hdl.handle.net/10953/544
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6Academic Journal
المؤلفون: Garzón, Camilo, Blanco, Ana María, Pavas, Andrés, Meyer, Jan
المصدر: Revista UIS Ingenierías, ISSN 1657-4583, Vol. 23, Nº. 1, 2024 (Ejemplar dedicado a: Revista UIS Ingenierías), pags. 25-38
مصطلحات موضوعية: teorías de potencia, asignación de responsabilidades, calidad de potencia, perturbaciones, Power Theories, Responsibilities Assessment, Power Quality, Disturbances
وصف الملف: application/pdf
Relation: https://dialnet.unirioja.es/servlet/oaiart?codigo=9514687; (Revista) ISSN 2145-8456; (Revista) ISSN 1657-4583
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7Dissertation/ Thesis
المساهمون: Ibañez Olaya, Henry Felipe
مصطلحات موضوعية: Transitorios, Caídas de tensión, Aumento de tensión, Sobretensión, Subtensión, Interrupciones sostenidas, Desbalance de voltaje, Tecnología en Electricidad -- Tesis y disertaciones académicas, Calidad de energía eléctrica, Análisis de armónicos y reactivos, Eficiencia energética en empresas, Impacto de la calidad de potencia en costos, Transients, sags, swells, surge, undervoltage, Sustained interruptions
وصف الملف: pdf; application/pdf
Relation: http://hdl.handle.net/11349/41307
الاتاحة: http://hdl.handle.net/11349/41307
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8Academic Journal
المؤلفون: Yair F. Rochetta, Leonel Ávalos, Julián A. De Larrechea
المصدر: Tecnología y Ciencia, Iss 32, Pp 37-44 (2018)
مصطلحات موضوعية: Compensación reactiva, Armónicos, Resonancia, Calidad de potencia, Technology, Engineering (General). Civil engineering (General), TA1-2040, Science (General), Q1-390
وصف الملف: electronic resource
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9Academic Journal
المصدر: Revista Ingenierías Universidad de Medellín, Vol 17, Iss 32, Pp 199-212 (2018)
مصطلحات موضوعية: Armónicos, calidad de potencia, hundimientos de tensión, medición multipunto, modelado, simulación, Technology, Engineering (General). Civil engineering (General), TA1-2040
وصف الملف: electronic resource
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10Academic Journal
المؤلفون: Sanabria Villamizar, Johinner Mauricio
المصدر: Ingeniería Eléctrica
مصطلحات موضوعية: Transformada de Hilbert-Huang, Calidad de potencia, Transformada rápida de Fourier, Transformada Wavelet, Frecuencia instantánea, Análisis de oscilaciones, Hilbert-Huang Transform, Power Quality, Fast Fourier Transform, Wavelet Transform, Instantaneous Frequency, Oscillations Analysis, Electrical and Computer Engineering, Engineering, Power and Energy
وصف الملف: application/pdf
Relation: https://ciencia.lasalle.edu.co/ing_electrica/595; https://ciencia.lasalle.edu.co/context/ing_electrica/article/1587/viewcontent/42161016_2020.pdf
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11Academic Journal
المصدر: DYNA; Vol. 87 No. 213 (2020): April - June; 28-33 ; DYNA; Vol. 87 Núm. 213 (2020): Abril - Junio; 28-33 ; 2346-2183 ; 0012-7353
مصطلحات موضوعية: Calidad de potencia, Micro Red, Simulación en Tiempo Real (SimTR), armónicos, parpadeo, inyección DC, Power Quality (PQ), Microgrid, Real Time Simulation, Harmonics, flicker, DC injection
وصف الملف: application/pdf; text/xml
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12Academic Journal
المصدر: Ingeniería e Investigación; Vol. 40 No. 3 (2020); 29-37 ; Ingeniería e Investigación; Vol. 40 Núm. 3 (2020); 29-37 ; 2248-8723 ; 0120-5609
مصطلحات موضوعية: AC islanded microgrid, Disturbances, field measurements, power quality, Electrical Engineering, Microrred aislada AC, Perturbaciones, mediciones de campo, calidad de potencia, Ingeniería Eléctrica
وصف الملف: application/pdf; text/xml
Relation: https://revistas.unal.edu.co/index.php/ingeinv/article/view/89091/77388; https://revistas.unal.edu.co/index.php/ingeinv/article/view/89091/78125; Agundis-Tinajero, G., Segundo-Ramírez, J., Peña-Gallardo, R., Visairo-Cruz, N., Núñez-Gutiérrez, C., Guerrero, J. M., and Savaghebi, M. (2018). Harmonic issues assessment on PWM VSC- based controlled microgrids using Newton methods. IEEE Transactions on Smart Grid, 9(2), 1002-1011. https://doi.org/10.1109/TSG.2016; Algaddafi, A., Brown, N., Gammon, R., Altuwayjiri, S. A., and Alghamdi, M. (2016). Improving off-grid PV system power quality, and comparing with grid power quality. Paper presented at the International Conference on Electronics, Information, and Communications, ICEIC 2016, (Dc). https://doi.org/10.1109/ELINFOCOM.2016.7562928; Blanco, C., Tardelli, F., Reigosa, D., Zanchetta, P., and Briz, F. (2019). Design of a cooperative voltage harmonic compensation strategy for islanded microgrids combining virtual admittance and repetitive controller. IEEE Transactions on Industry Applications, 55(1), 680 688. https://doi.org/10.1109/TIA.2018.2868691; Bollen, M., Zhong, J., Zavoda, F., Meyer, J., McEachern, A., and Lopez, F. C. (2017a). Power Quality aspects of Smart Grids. Renewable Energy and Power Quality Journal, 1(8), 1061-1066. https://doi.org/10.24084/repqj08.583; Bollen, M. H. J., Das, R., Djokic, S., Ciufo, P., Meyer, J., Ronnberg, S. K., and Zavodam, F. (2017b). Power Quality Concerns in Implementing Smart Distribution-Grid Applications. IEEE Transaction on Smart Grid, 8(1), 391-399. https://doi.org/10.1109/TSG.2016.2596788; CIGRE Working Group JWG C4/C6.29. (2016). Power Quality Aspects of Solar Power. (Technical Brochures; Vol. 672). CIGRE. ISBN: 978-2-85873-375-0 https://e-cigre.org/publication/672-power-quality-aspects-of-solar-power; CIGRE Working group JWG C4.24/CIRED. (2018). Power quality and EMC issues with future electricity networks. In Technical Brochures; Vol. 719). CIGRE. ISBN: 978-2-85873-421-4 http://cired.net/uploads/default/files/final-report-C4.24-CIRED.pdf; Dehghani, M. T., Vahedi, A., Savaghebi, M., and Guerrero, J. M. (2012). Voltage quality improvement in islanded microgrids supplying nonlinear loads. 2012 3rd Power Electronics and Drive Systems Technology (PEDSTC), 3, 360-365. https://doi.org/10.1109/PEDSTC.2012.6183356; Garde, R., Casado, S., Santamaria, M., and Aguado, M. (2015). Power quality and stability analysis during islanded mode operation in a microgrid based on masterslave configuration. In IEEE (Eds.) 2015 Saudi Arabia Smart Grid (SASG) (pp. 1-8). New York, NY: IEEE. https://doi.org/10.1109/SASG.2015.7449288; Golsorkhi, M. S., Lu, D., Savaghebi, M., Vasquez, J. C., and Guerrero, J. M. (2016). A GPS-based control method for load sharing and power quality improvement in microgrids. In IEEE (Eds.) 2016 IEEE 8th International Power Electronics and Motion Control Conference (IPEMC-ECCE Asia)(pp.3734-3740)New York, NY. IEEE. https://doi.org/10.1109/IPEMC.2016.7512893; Hicks, C., Baghzouz, Y., and Haddad, S. (2018). Power quality of residential PV system under low solar irradiance and off-grid operation. 2018 18th International Conference on Harmonics and Quality of Power (ICHQP), 4026, 1-5. https://doi.org/10.1109/ICHQP.2018.8378937; IEEE. (2014). IEEE Std 519-2014 (Revision of IEEE Std 519-1992) Recommended Practice and Requirements for Harmonic Control in Electric Power Systems. New York, NY: IEEE. https://doi.org/10.1109/IEEESTD.2014.6826459; Kaushal, J. and Basak, P. (2020). Power quality control based on voltage sag/swell, unbalancing, frequency, THD and power factor using artificial neural network in PV integrated AC microgrid. Sustainable Energy, Grids and Networks, 23, 100365. https://doi.org/10.1016/j.segan.2020.100365; Kulia, G., Molinas, M., Lundheim, L. M., and Fosso, O. B. (2017). Simple model for understanding harmonics propagation in single-phase microgrids. In IEEE (Eds.) 6th International Conference on Clean Electrical Power (ICCEP), pp. 354-358. New York, NY: IEEE. https://doi.org/10.1109/ICCEP.2017.8004839; Kumar, K. and Venkateshwarlu, S. (2013). A Review on Power Quality in Grid Connected Renewable Energy System. CVR Journal of Science and Technology, 5, 6. https://doi.org/10.32377/cvrjst0510; Laaksonen, H. and Kauhaniemi, K. (2008). Voltage and current THD in microgrid with different DG unit and load configurations. CIRED Seminar 2008: SmartGrids for Distribution, (0057), 71-71. https://doi.org/10.1049/ic:20080476; Lhachimi, H., Sayouti, Y., and Kouari, Y. El. (2020). Control of a flexible microgrid during both modes of operations with presence of nonlinear loads. Journal of the Franklin Institute, 357(11), 6498-6538. https://doi.org/10.1016/j.jfranklin.2020.03.046; López-García, D., Arango-Manrique, A., and Carvajal-Quintero, S. X. (2018). Integration of distributed energy resources in isolated microgrids: the Colombian paradigm. Revista TecnoLógicas, 21(42), 13-30. https://doi.org/10.22430/22565337.774; Marnay, C., Chatzivasileiadis, S., Abbey, C., Iravani, R., Joos, G., Lombardi, P., Mancarella, P., and Appen, J. V. (2015). Microgrid Evolution Roadmap. In IEEE (Eds.) International Symposium on Smart Electric Distribution Systems and Technologies (EDST) (pp. 139-144). New York, NY: IEEE. https://doi.org/10.1109/SEDST.2015.7315197; Micallef, A., Apap, M., Spiteri-Staines, C., and Guerrero, J. M. (2012). Cooperative control with virtual selective harmonic capacitance for harmonic voltage compensation in islanded microgrids. IECON 2012 - 38th Annual Conference on IEEE Industrial Electronics Society, 3, 5619- 5624. https://doi.org/10.1109/IECON.2012.6389037; Nomm, J., Ronnberg, S., and Bollen, M. (2018a). Harmonic voltage measurements in a single house microgrid. 18th International Conference on Harmonics and Quality of Power (ICHQP), 2018(May), 1-5. https://doi.org/10.1109/ICHQP.2018.8378921; Nomm, J., Ronnberg, S., and Bollen, M. (2018b). An analysis of frequency variations and its implications on connected equipment for a nanogrid during Islanded operation. Energies, 11(9), 1-13. https://doi.org/10.3390/en11092456; Nomm, J., Ronnberg, S., and Bollen, M. (2019). An Analysis of Voltage Quality in a Nanogrid during Islanded Operation. Energies, 12(4), 614. https://doi.org/10.3390/en12040614; Padayattil, G. M., Thobias, T., Thomas, M., Sebastian, J., and Pathirikkat, G. (2016). Harmonic analysis of microgrid operation in islanded mode with nonlinear loads. 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13Academic Journal
المؤلفون: Bueno Contreras, Holman Heiner
المساهمون: Ramos Fuentes, Germán Andrés
مصطلحات موضوعية: 537 - Electricidad y electrónica, 530 - Física, 629 - Otras ramas de la ingeniería, 620 - Ingeniería y operaciones afines, Extended state observer, UPQC, Power quality, Resonant control, Power electronics, Power factor correction, PFC, Calidad de potencia, Control resonante, Observador de estados extendidos, Electrónica de potencia
وصف الملف: application/pdf; image/jpeg
Relation: “Calidad de potencia eléctrica - Definiciones y aspectos fundamentales,” Norma Técnica Colombiana ICONTEC NTC 5000, 2013.; “IEEE Recommended Practice for Monitoring Electric Power Quality,” IEEE Std. 1159, 2019.; “Calidad de la potencia eléctrica. Límites y metodología en punto de conexión común,” Norma Técnica Colombiana ICONTEC NTC 5001, 2008.; “Electromagnetic compatibility (EMC) - Part 4-30: Testing and measurement techniques - Power quality measurement methods,” IEC International Standard IEC61000-4-30, 2015.; “IEEE Recommended Practice and Requirements for Harmonic Control in Electric Power Systems”, IEEE Std. 519, 2014.; “Electromagnetic compatibility (EMC) - Part 4-7: Testing and measurement techniques - General guide on harmonics and interharmonics measurements and instrumentation, for power supply systems and equipment connected thereto”, IEC International Standard IEC61000-4-7, 2008.; S. Bhattacharyya, “Power quality requirements and responsibilities at the point of connection”, Ph.D. dissertation, Technische Universiteit Eindhoven, 2011; T. Dao, B. T. Phung, and T. Blackburn, “Effects of voltage harmonics on distribution transformer losses,” in 2015 IEEE PES Asia-Pacific Power and Energy Engineering Conference (APPEEC), Nov 2015, pp. 1–5.; M. Kolcun, A. Gawlak, M. Kornatka, and Z. Conka, “Active and reactive power losses in distribution transformers,” Acta Polytechnica Hungarica, vol. 17, no. 1, pp. 161–174, 2020.; S. Dwivedi, S. Jain, K. K. Gupta, and P. Chaturvedi, Modeling and Control of Power Electronics Converter System for Power Quality Improvements. Elsevier Science, 2018. [Online]. Available: https://books.google.com.co/books?id=chdqDwAAQBAJ; J. Hamachi, Kristina; Eto, “Understanding the Cost of Power Interruptions to U.S. Electricity Consumers,” University of California Berkeley, Tech. Rep., 2004. [Online]. Available: https://emp.lbl.gov/sites/all/files/lbnl-55718.pdf; Suxia Jiang, Guangzhao Cui, Lingzhi Cao, and Chunwen Li, “Design of H∞ robust control for single-phase shunt Active Power Filters,” in 2008 7th World Congress on Intelligent Control and Automation. IEEE, 2008, pp. 4639–4642. [Online]. Available: http: //ieeexplore.ieee.org/document/4593672/; Zhiqiang Wu and Guorong Zhang, “Research on sliding mode control based on exact feedback linearization for single-phase shunt APF,” in 2016 IEEE 8th International Power Electronics and Motion Control Conference (IPEMC-ECCE Asia). IEEE, may 2016, pp. 1350–1356. [Online]. Available: http://ieeexplore.ieee.org/document/7512486/; F. R. Jimenez, J. M. Salamanca, and P. F. Cardenas, “Modeling and circuital analysis of a Single Phase Shunt Active Power Filter,” in 2014 IEEE 5th Colombian Workshop on Circuits and Systems (CWCAS). IEEE, oct 2014, pp. 1–10. [Online]. Available: http: //ieeexplore.ieee.org/document/6994611/; M. Ramasamy and S. Thangavel, “Experimental verification of PV based Dynamic Voltage Restorer (PV-DVR) with significant energy conservation,” International Journal of Electrical Power and Energy Systems, vol. 49, pp. 296–307, jul 2013. [Online]. Available: http://linkinghub.elsevier.com/retrieve/pii/S014206151300046X; K. Chandrasekaran and V. Ramachandaramurthy, “An improved Dynamic Voltage Restorer for power quality improvement,” International Journal of Electrical Power and Energy Systems, vol. 82, pp. 354–362, nov 2016. [Online]. Available: http://linkinghub.elsevier.com/retrieve/pii/S0142061516303015; S. Kim, H.-G. Kim, and H. Cha, “Dynamic Voltage Restorer Using Switching Cell Structured Multilevel AC/AC Converter,” IEEE Transactions on Power Electronics, vol. 32, no. 11, pp. 8406–8418, nov 2017. [Online]. Available: http://ieeexplore.ieee.org/document/7801050/; M. Farhadi-Kangarlu, E. Babaei, and F. Blaabjerg, “A comprehensive review of dynamic voltage restorers,” International Journal of Electrical Power and Energy Systems, vol. 92, pp. 136–155, nov 2017. [Online]. Available: http://linkinghub.elsevier.com/retrieve/pii/S0142061516328149; E. Fuchs, “Unified Power Quality Conditioner (UPQC),” in Power Quality in Power Systems and Electrical Machines. Elsevier, 2008, pp. 443–468. [Online]. Available: http: //linkinghub.elsevier.com/retrieve/pii/B9780123695369500127; G. A. Ramos, R. Isaza, and R. Costa-Castello, “Robust Repetitive Control of Power Inverters for Standalone Operation in DG Systems,” IEEE Transactions on Energy Conversion, vol. 35, no. 1, pp. 237–247, mar 2020. [Online]. Available: https://ieeexplore.ieee.org/document/8879486/; W. Chankhamrian and K. Bhumkittipich, “The Effect of Series-Connected Transformer in DVR Applications,” Energy Procedia, vol. 9, pp. 306–315, 2011. [Online]. Available: https://linkinghub.elsevier.com/retrieve/pii/S1876610211017863; S. 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Nadia, “New hysteresis control band of an unified power quality conditioner,” Electric Power Systems Research, vol. 81, no. 9, pp. 1743–1753, sep 2011. [Online]. Available: https://linkinghub.elsevier.com/retrieve/pii/S0378779611001064; Kian Hoong Kwan, Yun Chung Chu, and Ping Lam So, “Model-Based H∞ Control of a Unified Power Quality Conditioner,” IEEE Transactions on Industrial Electronics, vol. 56, no. 7, pp. 2493–2504, jul 2009.; R. W. Erickson and D. Maksimovic, Fundamentals of Power Electronics, 2nd ed. Boston, MA: Springer US, 2001. [Online]. Available: https://www.cambridge.org/core/product/identifier/CBO9781107415324A009/type/book_parthttp://link.springer.com/10.1007/b100747; R. K. Patjoshi and K. Mahapatra, “High-performance unified power quality conditioner using non-linear sliding mode and new switching dynamics control strategy,” IET Power Electronics, vol. 10, no. 8, pp. 863–874, jun 2017. [Online]. 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Ortiz, “Metodologías para Identificar Fuentes Armónicas en Sistemas Eléctricos,” Bsc Thesis, Universidad Tecnológica de Pereira, 2007. [Online]. Available: https://core.ac.uk/download/pdf/71394321.pdf; B. P. McGrath and D. G. Holmes, “Accurate state space realisations of resonant filters for high performance inverter control applications,” in 2016 IEEE 2nd Annual Southern Power Electronics Conference (SPEC). IEEE, dec 2016, pp. 1–6. [Online]. Available: http://ieeexplore.ieee.org/document/7846186/; B. Francis and W. Wonham, “The internal model principle of control theory,” Automatica, vol. 12, no. 5, pp. 457–465, sep 1976. [Online]. Available: https://linkinghub.elsevier.com/retrieve/pii/0005109876900066; H. Bueno-Contreras and G. A. Ramos, “Optimal control of an upqc to assure power quality in electric distribution grids,” in 2019 IEEE Workshop on Power Electronics and Power Quality Applications (PEPQA), 2019, pp. 1–6.; H. Bueno-Contreras and G. A. Ramos, “Extended state observer based control of an upqc to assure power quality in electric distribution grids,” in 2019 IEEE 4th Colombian Conference on Automatic Control (CCAC), 2019, pp. 1–6.; K. Zhou, J. C. Doyle, and . Glover K. (Keith), Robust and optimal control. Upper Saddle River, N.J. : Prentice Hall, 1996.; G. F. Franklin, J. D. Powell, and A. Emami-Naeini, Feedback Control of Dynamic Systems, 7th ed. USA: Prentice Hall Press, 2014.; Texas Instruments, “TMS320x2833x, TMS320x2823x Technical Reference Manual”, TMS320x2833x Datasheet, 2020.; L. Lizarazo, “Plataforma experimental para el rechazo de perturbaciones periódicas,” B.Sc. Thesis, Universidad Nacional de Colombia, 2017.; Kemet Charged, “Box Capacitors Switching Applications,” C4ATFBW5400A3NJ Datasheet; ON Semiconductor, “STK581U3C2D-E Evaluation Board User’s Manual,” STK581U3C2DGEVB Datasheet, 2014.; ON Semiconductor, “STK581U3C2D-E Application Note,” Appl. Note, 2014; Texas Instruments, “TMS320x2833x, 2823x Enhanced Pulse Width Modulator (ePWM) Module”, Reference Guide, 2008; V. Espinoza, “Inveror Trifasico con IGBT’s aplicando técnica PWM,” B. Sc. Thesis, Escuela Politécnica Nacional, 2000. [Online]. Available: https://bibdigital.epn.edu.ec/bitstream/15000/9242/3/T1571.pdf; LEM, “Voltage Transducer LV 25-P,” LV 25-P Datasheet, 2014.; LEM, “Current Transducer LA 55-P,” LA 55-P Datasheet, 2018.; LEM, “Current Transducer HX 03 . 50-P,” HX 10-P Datasheet, 2019.; H. Bueno-Contreras, G. A. Ramos, and R. Costa-Castelló, “Robust H∞ Design for Resonant Control in a CVCF Inverter Application over Load Uncertainties,” Electronics, vol. 9, no. 1, 2020. [Online]. Available: https://www.mdpi.com/2079-9292/9/1/66; M. F. Byl, S. J. Ludwick, and D. L. Trumper, “A loop shaping perspective for tuning controllers with adaptive feedforward cancellation,” Precision Engineering, vol. 29, no. 1, pp. 27–40, 2005. [Online]. 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14Academic Journal
المؤلفون: Vargas Marin, Gustavo Adolfo
المساهمون: Navarro Sánchez, Henry
مصطلحات موضوعية: 620 - Ingeniería y operaciones afines, Distribution Network, Distributed generation, Photovoltaic system, Power quality, Voltage rise, Voltage unbalance, Harmonic distortion, Red de distribución, Generación distribuida, Sistema fotovoltaico, Calidad de potencia, Elevación de tensión, Desbalance de tensión, Distorsión armónica
وصف الملف: application/pdf
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15Academic Journal
المؤلفون: Agudelo Martínez, Daniel
المساهمون: Pavas, Andrés, Blanco Castañeda, Ana María, PROGRAMA DE INVESTIGACION SOBRE ADQUISICION Y ANALISIS DE SEÑALES PAAS-UN
مصطلحات موضوعية: 530 - Física::537 - Electricidad y electrónica, 620 - Ingeniería y operaciones afines::629 - Otras ramas de la ingeniería, Power Quality, Supraharmonics, Uncertainty, Distortion, LED, Electromagnetic Compatibility, Measurement System, Emission, Emissions, Power Electronics, Harmonics, Calidad de Potencia, Supraarmónicos, Incertidumbre, Distorsión, Compatibilidad Electromagnética, Sistema de Medición, Emisiones, Electrónica de Potencia, Armónicos
وصف الملف: application/pdf
Relation: IEC, “International Electrotechnical Vocabulary (IEV) - Part 161: Electromagnetic compatibility," standard, International Electrotechnical Commission, Geneva, CH, 2017.; M. H. J. Bollen and I. Y. H. Gu, Signal Processing of Power Quality Disturbances. Wiley-IEEE Press, 2006.; IEC. Electromagnetic compatibility (EMC) - Part 4-30: Testing and measurement techniques - Power quality measurement methods. Standard, International Electrotechnical Commission, Geneva, CH, 2003.; M.H.J. Bollen. What is power quality? Electric Power Systems Research, 66(1):5 -14, 2003. ISSN 0378-7796. doi: https://doi.org/10.1016/S0378-7796(03)00067-1. Power Quality; IEC. Electromagnetic compatibility (EMC) Part 1: General Section 1: Application and interpretation of fundamental definitions and terms. Standard, International Electrotechnical Commission, Geneva, CH, 2017.; Math H. J. Bollen and Irene Y. H. Gu. Signal Processing of Power Quality Disturbances. Wiley-IEEE Press, 2006. ISBN 9780471731689.; Anders Larsson. On High-Frequency Distortion in Low-Voltage Power Systems. Luleä University of Technology, 2011; Sarah Rönnberg. Emission and interaction from domestic installations in the low voltage electricity network, up to 150 kHz. Luleä University of Technology, Lulea, 2013. ISBN 978-91-7439-800-7.; Clayton Paul. Introduction to electromagnetic compatibility. Wiley-Interscience, Hoboken, N.J, 2006. ISBN 978-0-471-75500-5.; NTC. NTC 5001: Calidad de la Potencia Eléctrica. Límites y metodología de evaluación en Punto de Conexión Común. Norma Técnica Colombiana, 2008.; IEC. Electromagnetic compatibility (EMC) - Part 4-7: Testing and measurement techniques - General guide on harmonics and interharmonics measurements and instrumentation, for power supply systems and equipment connected thereto. Standard, International Electrotechnical Commission, Geneva, CH, 2002; E. O. Anders Larsson, Math H. J. Bollen, Mats G. Wahlberg, C. Martin Lundmark, and Sarah K. Ronnberg. Measurements of high-frequency (2-150 kHz) distortion in low voltage networks. IEEE Transactions on Power Delivery, 25(3):1749-1757, jul 2010. doi:10.1109/tpwrd.2010.2041371.; Sarah Karolina Ronnberg, Math H. J. Bollen, and Mats Wahlberg. Interaction between narrowband power-line communication and end-user equipment. IEEE Transactions on Power Delivery, 26(3):2034-2039, jul 2011. doi:10.1109/tpwrd.2011.2130543.; Math Bollen, Magnus Olofsson, Anders Larsson, Sarah Ronnberg, and Martin Lundmark. Standards for supraharmonics (2 to 150 kHz). IEEE Electromagnetic Compatibility Magazine, 3(1):114-119, 2014. doi:10.1109/memc.2014.6798813.; Math Bollen, Jan Meyer, Hortensia Amaris, Ana Maria Blanco, Aurora Gil de Castro, Jan Desmet, Matthias Klatt, Lukasz Kocewiak, Sarah Ronnberg, and Kai Yang. Future work on harmonics - some expert opinions part i - wind and solar power. In 2014 16th International Conference on Harmonics and Quality of Power (ICHQP). IEEE, may 2014. doi:10.1109/ichqp.2014.6842870.; D. A. Martinez and A. Pavas. Current supraharmonics identification in commonly used low voltage devices. In 2015 IEEE Workshop on Power Electronics and Power Quality Applications (PEPQA), pages 1-5, June 2015. doi: http://10.1109/PEPQA. 2015.7168230.; L. Paulsson, B. Ekehov, S. Halen, T. Larsson, L. Palmqvist, A. Edris, D. Kidd, A.J.F. Keri, and B. Mehraban. High-frequency impacts in a converter-based back-to-back tie, the eagle pass installation. IEEE Transactions on Power Delivery, 18(4):1410-1415, oct 2003. doi:10.1109/tpwrd.2003.817724.; Hani Vahedi, Abdolreza Sheikholeslami, Mohammad Tavakoli Bina, and Mahmood Vahedi. Review and simulation of fixed and adaptive hysteresis current control considering switching losses and high-frequency harmonics. Advances in Power Electronics, 2011: 1-6, 2011. doi:10.1155/2011/397872.; Sarah K. Ronnberg, Math H.J. Bollen, Hortensia Amaris, Gary W. Chang, Irene Y.H. Gu, Lukasz H. Kocewiak, Jan Meyer, Magnus Olofsson, Paulo F. Ribeiro, and Jan Desmet. On waveform distortion in the frequency range of 2 kHz-150 kHz - review and research challenges. Electric Power Systems Research, 150:1-10, sep 2017. doi:10.1016/j.epsr.2017.04.032; Sarah Ronnberg, Math Bollen, and Aurora Gil de Castro. Harmonic Distortion from Energy-Efficient Equipment and Production in the Low-Voltage Network. Luleä University of Technology, 2014.; Enrique Jácome. Análisis de Compatibilidad Electromagnética y Calidad de Potencia entre dos tecnologías de lámparas de descarga que presentan bajo factor de potencia y coexisten en una instalación eléctrica. Universidad Nacional de Colombia, 2014.; Daniel Agudelo-Martínez. Identificación de emisión de supraarmónicos asociada con algunos dispositivos de baja tensión. Universidad Nacional de Colombia, 2015.; D. Agudelo-Martínez, M. Limas, A. Pavas, and J. Bacca. Supraharmonic bands detection for low voltage devices. In 2016 17th International Conference on Harmonics and Quality of Power (ICHQP), pages 1003-1009, Oct 2016. doi:10.1109/ICHQP.2016.7783327.; Sarah Ronnberg, Math Bollen. Propagation of Supraharmonics in the Low Voltage Grid. Report, Energiforsk, Stockholm, Sweden, 2017.; Sarah Ronnberg, Anders Larsson, Math Bollen, and Jean-Luc Schanen. A simple model for interaction between equipment at a frequency of some tens of khz. In International Conference on Electricity Distribution: 06/06/2011-09/06/2011, 2011.; Matthias Klatt, Jan Meyer, and Peter Schegner. Comparison of measurement methods for the frequency range of 2 kHz to 150 kHz. In 2014 16th International Conference on Harmonics and Quality of Power (ICHQP). IEEE, may 2014. doi:10.1109/ichqp.2014.6842791; Christian Waniek, Thomas Wohlfahrt, Johanna M.A. Myrzik, Jan Meyer, Matthias Klatt, and Peter Schegner. Supraharmonics: Root causes and interactions between multiple devices and the low voltage grid. In 2017 IEEE PES Innovative Smart Grid Technologies Conference Europe (ISGT-Europe). IEEE, sep 2017. doi:10.1109/isgteurope.2017.8260267; Grevener Anne, Meyer Jan, and Ronnberg Sarah. Comparison of measurement methods for the frequency range 2 -150 kHz supraharmonics). In 2018 IEEE 9th International Workshop on Applied Measurements for Power Systems (AMPS). IEEE, sep 2018. doi:10.1109/amps.2018.8494879.; I. Angulo, A. Arrinda, I. Fernandez, N. Uribe-Perez, I. Arechalde, and L. Hernandez. A review on measurement techniques for non-intentional emissions above 2 kHz. In 2016 IEEE International Energy Conference (ENERGYCON). IEEE, apr 2016. doi:10.1109/energycon.2016.7513893.; S. Subhani, V. Cuk, and J.F.G. Cobben. A literature survey on power quality disturbances in the frequency range of 2-150 kHz. Renewable Energy and Power Quality Journal, 1(15):405-410, apr 2017. doi:10.24084/repqj15.333.; I. Urdea-Marcus, A. Nestor, and P. Clarkson. The influence of the network impedance on the non-sinusoidal (harmonic) network current and flicker measurements. In CPEM 2010. IEEE, jun 2010. doi:10.1109/cpem.2010.5543785.; Daniel Agudelo-Martinez, Camilo Garzon, and Andres Pavas. Interaction of power quality disturbances within 2-150 kHz (supraharmonics): Analytical framework. In 2018 18th International Conference on Harmonics and Quality of Power (ICHQP). IEEE, may 2018. doi:10.1109/ichqp.2018.8378859; Daniel Agudelo-Martinez, Fabian Rios, and Andres Pavas. Interaction of some low power led lamps within 2-150 khz (supraharmonics). In 2018 18th International Conference on Harmonics and Quality of Power (ICHQP). IEEE, may 2018. doi:10.1109/ichqp.2018.8378815.; D. Zhao and G. Rietveld. The influence of source impedance in electrical characterization of solid state lighting sources. In 2012 Conference on Precision electromagnetic Measurements. IEEE, jul 2012. doi:10.1109/cpem.2012.6250921.; S. Ronnberg and M. Bollen. Measurements of primary and secondary emission in the supraharmonic frequency range 2-150 khz. In -. CIRED, jun 2015.; R Stiegler, J Meyer, J Drapela, T Hanzlik, M Hockel, K Scheida, and S Schory. Survey of network impedance in the frequency range 2-9 khz in public low voltage networks in at/ch/cz/ge. In (CIRED) 2019, Madrid. CIRED, jun 2019.; Hameg Instruments Germany. Line Impedance Stabilization Network, Technical Data. Rohde & Schwarz Germany, 2019.; Matthias Klatt, Jan Meyer, Peter Schegner, Robert Wolf, and Bernhard Wittenberg. Filter for the measurement of supraharmonics in public low voltage networks. In 2015 IEEE International Symposium on Electromagnetic Compatibility (EMC). IEEE, August 2015. doi:10.1109/isemc.2015.7256141.; Dewetron Inc. DEWE-3040 Data Acquisition System, Owner's Guide. Dewetron Inc,2019.; Ana-Maria Blanco, Ronny Gelleschus, Jan Meyer, and Peter Schegner. Impact of measurement setup and test load on the accuracy of harmonic current emission measurements. In 2015 IEEE International Instrumentation and Measurement Technology Conference (I2MTC) Proceedings. IEEE, may 2015. doi:10.1109/i2mtc.2015.7151245; Daniel Agudelo-Martinez and Andres Pavas. Simulation of supraharmonics: A compact fluorescent lamp (CFL) in single operation. In 2017 IEEE Workshop on Power Electronics and Power Quality Applications (PEPQA). IEEE, may 2017. doi:10.1109/pepqa.2017.7981682.; Ana Maria Blanco, Manish Gupta, Aurora Gil de Castro, Sarah Ronnberg, and Jan Meyer. Impact of at-top voltage waveform distortion on harmonic current emission and summation of electronic household appliances. Renewable Energy and Power Quality Journal, 1:698-703, apr 2018. doi:10.24084/repqj16.437; Anne Grevener, Jan Meyer, Sarah R onnberg, Math Bollen, and Johanna Myrzik. Survey of supraharmonic emission of household appliances. CIRED - Open Access Proceedings Journal, 2017(1):870-874, oct 2017. doi:10.1049/oap-cired.2017.0458.; BIPM. Evaluation of measurement data %7C Guide to the expression of uncertainty in measurement. Standard, Bureau International des Poids et Mesures - BIPM, 2008.; Pearson Electornics Inc. Pearson current monitor model 411, datasheet. Pearson Electronics Inc, 2019.; Semyon G. Rabinovich. Evaluating Measurement Accuracy. Springer International Publishing, 2017. doi:10.1007/978-3-319-60125-0; ICONTEC. Requisitos generales para la competencia de los laboratorios de ensayo y calibración. Standard, ICONTEC, 2005.; D. Agudelo-Martinez, A.M. Blanco, R. Stiegler, F. Pavas, and J. Meyer. In uence of measurement setup on the emission of devices in the frequency range 2-150 khz. Power Tech 2019, 2019(1):to appear, 2019.; S. K. Ronnberg, A. G. Castro, M. H. J. Bollen, A. Moreno-Munoz, and E. Romero-Cadaval. Supraharmonics from power electronics converters. In 2015 9th International Conference on Compatibility and Power Electronics (CPE), pages 539-544, June 2015. doi:10.1109/CPE.2015.7231133.; A. Moreno-Munoz, A. Gil-de-Castro, E. Romero-Cavadal, S. R onnberg, and M. Bollen. Supraharmonics (2 to 150 khz) and multi-level converters. In 2015 IEEE 5th International Conference on Power Engineering, Energy and Electrical Drives (POWERENG), pages 37-41, May 2015. doi:10.1109/PowerEng.2015.7266293; Alan V. Oppenheim, Ronald W. Schafer, and John R. Buck. Discrete-Time Signal Processing (2nd Edition) (Prentice-hall Signal Processing Series). Prentice Hall, 1999. ISBN 0137549202.; Matlab. stft: Short-time fourier transform, 2019. Accessed in December 8, 2019.; Ana Maria Blanco, Sergey Yanchenko, Jan Meyer, and Peter Schegner. Impact of supply voltage distortion on the current harmonic emission of non-linear loads. DYNA, 82(192): 150-159, August 2015. doi:10.15446/dyna.v82n192.48591.; A. M. Blanco, R. Stiegler, J. Meyer, and M. Schwenke. Implementation of harmonic phase angle measurement for power quality instruments. 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ISBN 9780471226932.; Sarah K. Ronnberg, Aurora Gil de Castro, Antonio Moreno-Munoz, Math H.J. Bollen, and Joaquin Garrido. Solar PV inverter supraharmonics reduction with random PWM. In 2017 11th IEEE International Conference on Compatibility, Power Electronics and Power Engineering (CPE-POWERENG). IEEE, 2017. doi:10.1109/cpe.2017.7915248.; Dilini Darmawardana, Sarath Perera, Duane Robinson, Philip Ciufo, Jan Meyer, Matthias Klatt, and Upuli Jayatunga. Investigation of high frequency emissions (supraharmonics) from small, grid-tied, photovoltaic inverters of di erent topologies. In 2018 18th International Conference on Harmonics and Quality of Power (ICHQP). IEEE, May 2018. doi:10.1109/ichqp.2018.8378926.; Andreas Mohos and Jozsef Ladanyi. Emission measurement of a solar park in the frequency range of 2 to 150 kHz. In 2018 International Symposium on Electromagnetic Compatibility (EMC EUROPE). IEEE, August 2018. doi:10.1109/emceurope.2018. 8485049.; Simon Haykin and Michael Moher. Communication Systems. Wiley, 2009. ISBN 9780471697909.; https://repositorio.unal.edu.co/handle/unal/77627
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16Academic Journal
المساهمون: Asesor Programa Nacional de Investigaciones en Energía y Minería, Colciencias, Asistente de Investigación GISEL., Universidad Tecnológica de Pereira, Universidad Industrial de Santander
المصدر: instname:Universidad EAFIT ; reponame:Repositorio Institucional Universidad EAFIT ; Ingeniería y Ciencia; Vol 2, No 4 (2006)
مصطلحات موضوعية: Power Quality, Multivariable Classification, Continuity Of Electricity Supply, Quality Indicators, Artificial Intelligence, Fault Location, Lamda Technique, Calidad De Potencia, Clasificación Multivariable, Continuidad Del Suministro De Energía Eléctrica, Indicadores De Calidad, Inteligencia Artificial, Localización De Fallas, Técnica Lamda
جغرافية الموضوع: Medellín de: Lat: 06 15 00 N degrees minutes Lat: 6.2500 decimal degrees Long: 075 36 00 W degrees minutes Long: -75.6000 decimal degrees
وصف الملف: application/pdf; text/html
Relation: http://publicaciones.eafit.edu.co/index.php/ingciencia/article/view/465; http://hdl.handle.net/10784/14555
الاتاحة: http://hdl.handle.net/10784/14555
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17Academic Journal
المؤلفون: Denis Amanda Acevedo Vásquez, Gloria Gisselle Chacón Pedraza, Francisco Santamaría Piedrahita
المصدر: Inge-Cuc, Vol 12, Iss 1, Pp 65-72 (2016)
مصطلحات موضوعية: calidad de potencia eléctrica, campo eléctrico, redes aéreas de media tensión, sistemas de medición, sobretensiones transitorias, medición de fenómenos transitorios, Engineering (General). Civil engineering (General), TA1-2040
وصف الملف: electronic resource
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18Dissertation/ Thesis
المؤلفون: Sánchez García, Héctor Favio
المساهمون: López Castrillón, Yuri Ulianov, Universidad Autónoma de Occidente
مصطلحات موضوعية: Harmonic generation, Photovoltaic energy, Power quality, Distribution networks, Generación de armónicos, Energía fotovoltaica, Calidad de potencia, Redes de distribución, Maestría en Sistemas Energéticos
وصف الملف: 123 páginas; application/pdf
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19Dissertation/ Thesis
المؤلفون: Garzón, Camilo Andrés
المساهمون: Pavas Martínez, Fabio Andrés, Blanco Castañeda, Ana María, Programa de Investigacion sobre Adquisicion y Analisis de Señales Paas-Un, Institute of Electric Power Systems and High Voltage Engineering (IEEH) of the TUD Dresden University of Technology, Garzón, Camilo Andrés 000000021658179X, Garzón, Camilo Andrés 56719488200
مصطلحات موضوعية: 620 - Ingeniería y operaciones afines::629 - Otras ramas de la ingeniería, Equalizers (Electronics), Causalidad (Física), Redes eléctricas, Ecualizadores (Electrónica), Síntesis de redes electrónicas, Armónicos (Ondas eléctricas), Perturbación (Matemáticas), Causality (Physics), Electric networks, Electric networks synthesis, Harmonics (Electric waves), Perturbation (mathematics), Causalidad, Sistemas de distribución, Distorsión armónica, Fuente armónica, Perturbaciones estacionarias de calidad de potencia, Problema de asignación de responsabilidades, Causality, Distribution system, Harmonic distortion, Harmonic source, Power ouality stationary disturbances, Responsibility assignment problem
وصف الملف: 100 páginas; application/pdf
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20Academic Journal
المؤلفون: Rochetta, Yair F., Ávalos, Leonel, De Larrechea, Julián A.
المصدر: Technology and Science Magazine; No. 32 (2018): Jóvenes Investigadores Tecnológicos 2016 (JIT 2016); 37-44 ; Revista Tecnología y Ciencia; Núm. 32 (2018): Jóvenes Investigadores Tecnológicos 2016 (JIT 2016); 37-44 ; Revista de Tecnologia e Ciência; n. 32 (2018): Jóvenes Investigadores Tecnológicos 2016 (JIT 2016); 37-44 ; 1666-6933 ; 1666-6917
مصطلحات موضوعية: Compensación reactiva, Armónicos, Resonancia, Calidad de potencia, Reactive compensation, Harmonics, Resonance, Power quality
وصف الملف: application/pdf