يعرض 1 - 20 نتائج من 198 نتيجة بحث عن '"Convertidores de corriente electrica"', وقت الاستعلام: 0.75s تنقيح النتائج
  1. 1
    Book

    وصف الملف: application/pdf

    Relation: Textos Academicos; Adams, J., Carter, C., and Huang, S.-H. (2012). Ercot experience with sub synchronous control interaction and proposed remediation. In PES T and D 2012, pages 1–5.; Akagi, H., Watanabe, E. H., and Aredes, M. (2007). Instantaneous Power Theory and Applications to Power Conditioning. IEEE Power Engineering Society, NJ, Wiley-Interscience, NY, 1 edition.; Anderson, P. and Fouad, A. (2003). Power system control and stability. Piscataway, NJ, Wiley-Interscience, NY, 2 edition.; Arrillaga, J. andWatson, N. (2003). Power System Harmonics. John Wiley and Sons, NY, 3 edition; Bravo, M., Garces, A., Montoya, O. D., and Baier, C. R. (2018). Nonlinear analysis for the three-phase PLL: A new look for a classical problem. In 2018 IEEE 19thWorkshop on Control and Modeling for Power Electronics (COMPEL). IEEE.; Chang-Chien, L.-R. and Yin, Y.-C. (2009). Strategies for operating wind power in a similar manner of conventional power plant. IEEE Transactions on Energy Conversion, 24(4):926–934; Chen, L., Liu, Y., Arsoy, A., Ribeiro, P., Steurer, M., and Iravani, M. (2006). Detailed modeling of superconducting magnetic energy storage (smes) system. IEEE Transactions on Power Delivery, 21(2):699–710. CIGRE A1/C4 working group (2022). Guide on the Assessment, Specification and Design of Synchronous Condenser for Power System with Predominance of Low or Zero Inertia Generators. CIGRE.; Conejo, A. and Baringo, L. (2018). Power system operations. Springer; Damas, R. N., Son, Y., Yoon, M., Kim, S.-Y., and Choi, S. (2020). Subsynchronous oscillation and advanced analysis: A review. IEEE Access, 8:224020–224032.; D’Arco, S. and Suul, J. A. (2014). Equivalence of virtual synchronous machines and frequency-droops for converter-based microgrids. IEEE Transactions on Smart Grid, 5(1):394–395.; Dario Jaramillo, R. and Garces, A. (2015). Wave energy: Modeling and analysis of power grid integration. IEEE Latin America Transactions, 13(12):3863–3872.; Davy, R. and Hiskens, I. (1997). Lyapunov functions for multimachine power systems with dynamic loads. IEEE Transactions on Circuits and Systems I: Fundamental Theory and Applications, 44(9):796–812.; D’Arco, S., Suul, J. A., and Fosso, O. B. (2015). A virtual synchronous machine implementation for distributed control of power converters in smartgrids. Electric Power Systems Research, 122:180–197.; ENTSO-E (2022). Stability management in power electronics dominated systems: a prerequisite to the success of the energy transition. European Network of Transmission System Operators for Electricity.; Farrokhabadi, M., Cañizares, C. A., Simpson-Porco, J.W., Nasr, E., Fan, L., Mendoza-Araya, P. A., Tonkoski, R., Tamrakar, U., Hatziargyriou, N., Lagos, D., Wies, R. W., Paolone, M., Liserre, M., Meegahapola, L., Kabalan, M., Hajimiragha, A. H., Peralta, D., Elizondo, M. A., Schneider, K. P., Tuffner, F. K., and Reilly, J. (2020). Microgrid stability de nitions, analysis, and examples. IEEE Transactions on Power Systems, 35(1):13– 29.; Feynman, R., Leighton, R., and Sands, M. (2015). The Feynman Lectures on Physics, Vol. I. Hachette UK, NY, 1 edition.; Garces, A. (2022). Economic dispatch of thermal units, pages 125–144; Garcés, A. and Galvis, J.-C. (2004). Flujo de carga armónico en sistemas de distribucion radiales. Trabajo de grado.; Garces, A. and Gil-Gonzalez, W. (2021). Stability analysis for a grid forming converter with inverse droop connected to an in nite bus. In 2021 IEEE 5th Colombian Conference on Automatic Control (CCAC), pages 286–290.; Gil-González, W., Garces, A., and Escobar, A. (2019a). Passivity-based control and stability analysis for hydro-turbine governing systems. Applied Mathematical Modelling, 68:471–486.; Gil-González,W. J., Garces, A., Fosso,O. B., and Escobar-Mejía, A. (2019b). Passivity-based control of power systems considering hydro turbine with surge tank. IEEE Transactions on Power Systems, 35(3):2002– 2011.; Gil-González, W., Montoya, O. D., Garces, A., et al. (2019). Direct power control of electrical energy storage systems: A passivity-based pi approach. Electric Power Systems Research, 175:105885.; Gless, G. E. (1966). Direct method of liapunov applied to transient power system stability. IEEE Transactions on Power Apparatus and Systems, PAS-85(2):159–168.; Haddad, W. and Chellaboina, V. (2008). Nonlinear Dynamical Systems and Control: A Lyapunov-Based Approach. Princeton University Press, NY, 2 edition.; Hale, J. K. (1980). Ordinary di erential equations. John Wiley and sons, Malabar, Florida, 2 edition.; Hatziargyriou, N., Milanovic, J., Rahmann, C., Ajjarapu, V., Cañizares, C., Erlich, I., Hill, D., Hiskens, I., Kamwa, I., Pal, B., et al. (2020). Stability de nitions and characterization of dynamic behavior in systems with high penetration of power electronic interfaced technologies.; He, J., Li, Y., Liang, B., and Wang, C. (2017). Inverse power factor droop control for decentralized power sharing in series-connected microconverters-based islanding microgrids. IEEE Transactions on Industrial Electronics, 64(9):7444–7454.; He ron, W. G. and Phillips, R. A. (1952). E ect of a modern amplidyne voltage regulator on underexcited operation of large turbine generators [includes discussion]. Transactions of the American Institute of Electrical Engineers. Part III: Power Apparatus and Systems, 71(3):692–697; Hill, D. (1993). Nonlinear dynamic load models with recovery for voltage stability studies. IEEE Transactions on Power Systems, 8(1):166–176.; IEEE (1969). Proposed excitation system de nitions for synchronous machines. IEEE Transactions on Power Apparatus and Systems, PAS 88(8):1248–1258.; IEEE (1994). Working group on prime mover and energy supply models for system dynamic performance studies dynamic models for combined cycle plants in power system studies. IEEE Transactions on Power Systems, 9(3):1698–1708.; IEEE-PES (2012). Ieee guide for control of small (100 kva to 5 mva) hydroelectric power plants. IEEE Std 1020-2011 (Revision of IEEE Std 1020-1988), pages 1–56.; IEEE TASK FORCE (1977). First benchmark model for computer simulation of subsynchronous resonance. IEEE Transactions on Power Apparatus and Systems, 96(5):1565–1572.; Kassakian, J. G., Perreault, D. J., Verghese, G. C., and Schlecht, M. F. (2023). Principles of power electronics. Cambridge University Press.; Khalil, H. (2002). Nonlinear Systems. Prentice Hall, NY, 3 edition.; Koritarov, V., Guzowski, L., Feltes, J., Kazachkov, Y., Gong, B., Trouille, B., Donalek, P., and Gevorgian, V. (2013a). Modeling Ternary Pumped Storage Units. Argonne National Laboratory; Koritarov, V., Guzowski, L., Feltes, J., Kazachkov, Y., Lam, B., Carlos Grande-Moran, G. T., Eng, L., Trouille, B., and Donalek, P. (2013b). Review of Existing Hydroelectric Turbine-Governor Simulation Models. Argonne National Laboratory; Krause, P., Wasynczuk, O., and Sudho , S. (2002). Analysis of electric machinery and drive systems. IEEE Power Engineering Society, NJ, Wiley-Interscience, NY, 2 edition.; Kron, G. (1942). Tensors for circuits. Dover Publications.; Kundur, P. (1994). Power systems stability and control. EPRI: power systems engineering series, NY, 3 edition.; Li, H., Wang, J., and Meng, J. (2021). Nonlinear control. In Learning Control, pages 93–102. Elsevier.; Luo, X., Wang, J., Dooner, M., and Clarke, J. (2015). Overview of current development in electrical energy storage technologies and the application potential in power system operation. Applied Energy, 137:511 – 536.; Machowski, J., Lubosny, Z., Bialek, J. W., and Bumby, J. R. (2020). Power system dynamics: stability and control. John Wiley and Sons, 3 edition.; Montoya, O. D., Garcés, A., and Espinosa-Pérez, G. (2018). A generalized passivity-based control approach for power compensation in distribution systems using electrical energy storage systems. Journal of Energy Storage, 16:259–268; Morison, K. and Glavic, M. (2007). Review of on-line dynamic security assessment tools and techniques. Technical report.; Narasimhamurthi, N. (1984). On the existence of energy function for power systems with transmission losses. IEEE Transactions on Circuits and Systems, 31(2):199–203.; Nikravesh, S. K. Y. (2018). Nonlinear Systems Stability Analysis. CRC Press.; Ortega, A. and Milano, F. (2016). Generalized model of vsc-based energy storage systems for transient stability analysis. IEEE Transactions on Power Systems, 31(5):3369–3380.; Ortega, R., Espinosa-Pérez, G., and Astol , A. (2013). Passivity-based control of ac drives: theory for the user and application examples. International Journal of Control, 86(4):625–635.; Ortega, R. and Garcia-Canseco, E. (2004). Interconnection and damping assignment passivity-based control: A survey. European Journal of Control, 10(5):432–450.; Padiyar, K. (2012). Analysis of Subsynchronous Resonance in Power Systems. Springer Science and Business Media, NY, US, 1 edition.; Patarroyo-Montenegro, J. F., Vasquez-Plaza, J. D., Andrade, F., and Fan, L. (2020). An Optimal Power Control Strategy for Grid-Following Inverters in a Synchronous Frame. Applied Sciences, 10(19):6730.; Patterson, B. (2012). Dc, come home: Dc microgrids and the birth of the enernet. Power and Energy Magazine, IEEE, 10(6):60–69.; Pearre, N. S. and Ribberink, H. (2019). Review of research on v2x technologies, strategies, and operations. Renewable and Sustainable Energy Reviews, 105:61 – 70.; Perez, M. A., Ceballos, S., Konstantinou, G., Pou, J., and Aguilera, R. P. (2021). Modular multilevel converters: Recent achievements and challenges. IEEE Open Journal of the Industrial Electronics Society, 2:224–239.; Perez Londono, S. M., Rodriguez Garcia, L. F., and Mora Florez, J. J. (2015). Obtencion de modelos de carga compuestos en sistemas de potencia para analisis dinamico: revision y aplicacion. Tecnura, 19:171–189.; Perko, L. (2001). Differential Equations and Dynamical Systems. Springer Verlag, New York, 1 edition.; Perko, L. (2013). Differential equations and dynamical systems, volume 7. Springer Science & Business Media.; Pulgar-Painemal, H. (2019). Enforcement of current limits in d g-based wind turbine dynamic models through capability curve. IEEE Transactions on Sustainable Energy, 10(1):318–320.; Rabie, D., Senjyu, T., Alkhalaf, S., Mohamed, Y. S., and Shehata, E. (2021). Study and analysis of voltage source converter control stability for HVDC system using di erent control techniques. Ain Shams Engineering Journal, 12(3):2763–2779.; Sami, I., Ullah, N., Muyeen, S. M., Techato, K., Chowdhury, M. S., and Ro, J.-S. (2020). Control methods for standalone and grid connected micro-hydro power plants with synthetic inertia frequency support: A comprehensive review. IEEE Access, 8:176313–176329.; Shih, M.-H. and Tan, K.-K. (2023). Covering theorems of convex sets related to xed-point theorems. In Nonlinear and convex analysis, pages 235–244. CRC Press.; Slootweg, J., de Haan, S., Polinder, H., and Kling, W. (2003). General model for representing variable speed wind turbines in power system dynamics simulations. IEEE Transactions on Power Systems, 18(1):144– 151.; Stagg, G. and El-Abiad, A. (1988). Computer methods in power systems analysis. McGraw-Hill.; Teodorescu, R., Liserre, M., and Rodriguez, P. (2011). Grid Converters for Photovoltaic and Wind Power Systems. IEEE Power Engineering Society, NJ, Wiley-Interscience, NY, 1 edition.; Van Der Schaft, A., Jeltsema, D., et al. (2014). Port-hamiltonian systems theory: An introductory overview. Foundations and Trends® in Systems and Control, 1(2-3):173–378.; Vega-Herrera, J., Rahmann, C. A., Valencia, F., and Strunz, K. (2020). Analysis and application of quasi-static and dynamic phasor calculus for stability assessment of integrated power electric and electronic systems. IEEE Transactions on Power Systems.; Venkataramana, A. (2007). Computational Techniques for Voltage Stability Assessment and Control. Springer, NY, 1 edition.; Villegas Pico, H., McCalley, J. D., Angel, A., Leon, R., and Castrillon, N. J. (2012). Analysis of very low frequency oscillations in hydro-dominant power systems using multi-unit modeling. IEEE Transactions on Power Systems, 27(4):1906–1915.; Walker, D., Bowler, C., Jackson, R., and Hodges, D. (1975). Results of subsynchronous resonance test at mohave. IEEE Transactions on Power Apparatus and Systems, 94(5):1878–1889.; Willems, J. L. and Willems, J. C. (1970). The application of lyapunov methods to the computation of transient stability regions for multimachine power systems. IEEE Transactions on Power Apparatus and Systems, PAS-89(5):795–801.; Wu, D., Tang, F., Vasquez, J. C., and Guerrero, J. M. (2014). Control and analysis of droop and reverse droop controllers for distributed generations. In 2014 IEEE 11th International Multi-Conference on Systems, Signals & Devices (SSD14), pages 1–5. IEEE.; Zografos, D. and Ghandhari, M. (2016). Estimation of power system inertia. In 2016 IEEE Power and Energy Society General Meeting (PESGM), pages 1–5.; https://doi.org/10.22517/9789587228960; Universidad Tecnológica de Pereira; Repositorio Institucional Universidad Tecnológica de Pereira; https://repositorio.utp.edu.co/home; https://hdl.handle.net/11059/14905

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    Dissertation/ Thesis

    المؤلفون: Oyuela Ocampo, Juan Camilo

    المساهمون: Garcés Ruiz, Alejandro, Bravo López, Manuel Fernando

    وصف الملف: application/pdf

    Relation: Aguirre, M., Kouro, S., Rojas, C. A., and Vazquez, S. (2021). Enhanced switching frequency control in fcs-mpc for power converters. IEEE Transactions on Indus- trial Electronics, 68(3):2470–2479.; Boudia, A., Messalti, S., Harrag, A., and Boukhnifer, M. (2021). New hybrid photo- voltaic system connected to superconducting magnetic energy storage controlled by PID-fuzzy controller. Energy Conversion and Management 244 (2021) 114435.; Cortes, P., Kazmierkowski, M. P., Kennel, R. M., Quevedo, D. E., and Rodriguez, J. (2008). Predictive control in power electronics and drives. IEEE Transactions on Industrial Electronics, 55(12):4312–4324.; Dai, J. (2010). Current source converters for megawatt wind energy conversion systems. Ryerson University, PhD Dissertation.; Dragiˇcevi ́c, T., Vazquez, S., and Wheeler, P. (2021). Advanced control methods for power converters in DG systems and microgrids. IEEE Transactions on Industrial Electronics, vol. 68, no. 7, pp. 5847-5862.; Ersdal, A. M., Imsland, L., and Uhlen, K. (2016). Model predictive load-frequency control. IEEE Transactions on Power Systems, 31(1):777–785.; Faulwasser, T., Gr ̈une, L., and M ̈uller, M. A. (2018). Economic nonlinear model predictive control. Foundations and Trends® in Systems and Control, 5(1):1–98.; Gil-Gonz ́alez, W., Martin Serra, F., Montoya, O. D., Ram ́ırez, C. A., and Orozco- Henao, C. (2020). Direct power compensation in ac distribution networks with sces systems via pi-pbc approach. Symmetry, 12(4):666.; Gil-Gonz ́alez, W. J., Garc ́es, A., and Escobar, A. (2017). A generalized model and control for supermagnetic and supercapacitor energy storage. Ingenier ́ıa y Ciencia, 13(26):147–171.; Gil-Gonz ́ales, W., Montoya, O. D., and Garc ́es, A. (2019). Direct power control of electrical energy storage systems: A passivity-based PI approach. Electric Power Systems Research 175 (2019) 105885.; Giraldo, E. and Garc ́es, A. (2014). An adaptive control strategy for a wind energy conversion system based on pwm-csc and pmsg. IEEE Transactions on Power Systems, 29(3):1446–1453.; Kamal, F. and Chowdhury, B. (2022). Model predictive control and optimization of networked microgrids. Electrical Power and Energy Systems 138 (2022) 107804.; Kotb, K. M., Elmorshedy, M. F., Salama, H. S., and D ́an, A. (2022). Enriching the stability of solar/wind DC microgrids using battery and superconducting magnetic energy storage based fuzzy logic control. Journal of Energy Storage 45 (2022) 103751.; Mohan, N., Undeland, T. M., and Robbins, W. P. (2003). Power electronics: con- verters, applications, and design. John wiley & sons.; Montoya, O. D., Garc ́es, A., and Espinoza-P ́erez, G. (2018a). A generalized passivity-based control approach for power compensation in distribution systems using electrical energy storage systems. Journal of Energy Storage 16 (2018) 259–268.; Montoya, O. D., Gil-Gonz ́ales, W., Garc ́es, A., and Espinoza-P ́erez, G. (2018b). Indirect IDA-PBC for active and reactive power support in distribution networks using smes systems with pwm-csc. Journal of Energy Storage 17 (2018) 261–271.; Nguyen, H. T. and Jung, J.-W. (2018). Asymptotic stability constraints for direct horizon-one model predictive control of spmsm drives. IEEE Transactions on Power Electronics, 33(10):8213–8219.; Nguyen, T.-T., Yoo, H.-J., and Kim, H.-M. (2016). Applying model predictive control to SMES system in microgrids for Eddy current losses reduction. IEEE Transactions on Applied Superconductivity, Vol. 26, N. 4, June 2016.; Ni, F., Zheng, Z., Xie, Q., Xiao, X., Zong, Y., and Huang, C. (2021). Enhancing resilience of DC microgrids with model predictive control based hybrid energy storage system. Electrical Power and Energy Systems 128 (2021) 106738.; Ortega, A. and Milano, F. (2016a). Generalized model of vsc-based energy storage systems for transient stability analysis. IEEE Transactions on Power Systems, 31(5):3369–3380.; Ortega, A. and Milano, F. (2016b). Modeling, simulation, and comparison of control techniques for energy storage systems. IEEE transactions on Power Systems, 32(3):2445–2454.; Rashid, M. H. (2001). Power Electronics Handbook. Academic Press, 1 edition.; Rawlings, J. B., Mayne, D. Q., and Diehl, M. M. (2017). Model Predictive Control: Theory, Computation, and Design 2nd Edition, pages 24–26. Nob Hill Publishing, LLC.; Rodriguez, J. and Cortes, P. (2012). Predictive control of power converters and electrical drives. John Wiley & Sons.; Schwenzer, M., Ay, M., Bergs, T., and Abel, D. (2021). Review on model predic- tive control: an engineering perspective. The International Journal of Advanced Manufacturing Technology, 117(5):1327–1349.; Sebaaly, F., Vahedi, H., Kanaan, H. Y., and Al-Haddad, K. (2018). Novel current controller based on MPC with fixed switching frequency operation for a grid-tied inverter. IEEE Transactions on Industrial Electronics, vol. 65, no. 8, pp. 6198- 6205.; Sou, W.-K., Chan, P.-I., Gong, C., and Lam, C.-S. (2023). Finite-set model pre- dictive control for hybrid active power filter. IEEE Transactions on Industrial Electronics, 70(1):52–64.; Teodorescu, R., Liserre, M., and Rodriguez, P. (2011). Grid converters for photo- voltaic and wind power systems. John Wiley & Sons.; Thoker, Z. A. and Lone, S. A. (2020). Voltage and frequency control of wind–diesel power system through adaptive sliding mode control of superconducting magnetic energy storage. wind engineering.; Toso, F., Favato, A., Torchio, R., Alotto, P., and Bolognani, S. (2021). Continuous control set model predictive current control of a microgrid-connected pwm inver- ter. IEEE Transactions on Power Systems, 36(1):415–425.; UPME (2022). Plan de expansi ́on de referencia generaci ́on transmisi ́on 2022-2037. Plan de expansi ́on.; Vazquez, S., Leon, J. I., Franquelo, L. G., Rodriguez, J., Young, H. A., Marquez, A., and Zanchetta, P. (2014). Model predictive control: A review of its applications in power electronics. IEEE Industrial Electronics Magazine, 8(1):16–31.; Wang, J., Tang, Y., Lin, P., Liu, X., and Pou, J. (2020). Deadbeat predictive current control for modular multilevel converters with enhanced steady-state performance and stability. IEEE Transactions on Power Electronics, 35(7):6878–6894.; Xu, L., Ma, R., Xie, R., Zhuo, S., Huangfu, Y., and Gao, F. (2022). Offset-free model predictive control of fuel cell dc-dc boost converter with low-complexity and high-robustness. IEEE Transactions on Industrial Electronics, pages 1–12.; Yazdani, A. and Iravani, R. (2010). Voltage-sourced converters in power systems: modeling, control, and applications. John Wiley & Sons.; Zhang, Z., Babayomi, O., Dragicevic, T., Heydari, R., Garcia, C., Rodriguez, J., and Kennel, R. (2022). Advances and opportunities in the model predictive control of microgrids: Part i primary layer. International Journal of Electrical Power and Energy Systems, 134:107411.; https://hdl.handle.net/11059/15441; Universidad Tecnológica de Pereira; Repositorio Universidad Tecnológica de Pereira; https://repositorio.utp.edu.co/home

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    Dissertation/ Thesis

    المؤلفون: Rubiano Bermúdez, Tomás

    المساهمون: Ríos Mesías, Mario Alberto, Ramos López, Gustavo Andrés

    وصف الملف: 31 páginas; application/pdf

    Relation: K. Chan , J. Oesterheld, S. Temtem , & J. Haldemann, ''Investigations on ROCOF withstand capability on large synchronous generators, '' en CIGRE Session 2018, Paris: 2018; D. Doheny & M. Conlon, ''Investigation into the local nature of rate of change of frequency in electrical power systems, '' en 52nd International Universities Power Engineering Conference (UPEC), 2017.; H. P. Hong, ''An efficient point estimate method for probabilistic analysis, '' en Reliability Engineering & System Safety, vol. 59, no. 3, pp. 261-267, 1998.; Comisión de Regulación de Energía Y Gas, ''Resolución No. 060 de 2019, '' Colombia: 2019; C2/C4.41 CIGRE Working Group, ''Impact of High Penetration of Inverter-based Generation on System Inertia Networks, '' en Brochure 851, CIGRE, Paris: Oct. 2021; O. Gomis, Escuela de Verano UniAndes-DIEE, 2019; N. Modi, A. Jalali, I. Commerford, & A. Groom, ''Fast Frequency Response from Transmission-Connected Solar Farms: Australian Experience, '' en Cigre Science and Engineering, 24th ed. , feb. 2022, pp. 187-199; A. Tuckey & S. Round, ''Practical application of a complete virtual synchronous generator control method for microgrid and grid-edge applications'' en 2018 IEEE 19th Workshop on Control and Modeling for Power Electronics (COMPEL), 2018.; R. Burden & J. Faires, ''Numerical Differentiation and Integration, '' en Numerical Analysis, 9th ed. Boston, MA, USA: Brooks/Cole, 2011.; J.M. Morales, L. Baringo, A.J. Conejo & R. Mínguez, ''Probabilistic power flow with correlated wind sources, '' en IET Gener., Transm. and Distrib., vol. 4, 5th ed., pp. 641-651; C. Ardila, ''Probabilistic Load Flow on HVAC/HVDC Systems With High Participation of Intermittent Renewable Energy Sources, '' Tesis Magíster en Ingeniería Eléctrica, Universidad de los Andes, Bogotá, Colombia, 2020.; A. Cepeda & M. Rios, ''Bulk Power System Availability Assesment with Multiple Wind Power Plants, '' en International Journal of Electrical and Computer Engineering (IJECE), vol.11, Feb. 2021, pp.27-36.; W. Hines, D. Montgomery, D. Goldsman & C. Borror, ''Parameter Estimation '' en Probability and Statistics in Engineering, 4th ed. USA: Wiley, 2003, pp.216-257; P. M. Anderson & A. A. Fouad, ''The Elementary Mathematical Model '' en Power System Control and Satibility, USA: vol.1, 1977, pp. 35-47; R. A. Vergara & M. A. Rios, ''Probabilistic Model of Wind Power Parks for Reliability Assessment, '' en 2020 IEEE ANDESCON, 2020.; EirGrid & SONI document. ''RoCoF Modification Proposal - TSO's Recommendations,'' Septiembre 4, 2012.; http://hdl.handle.net/1992/57841; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/

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    Dissertation/ Thesis

    المساهمون: Ramos López, Gustavo, Ríos Mesías, Mario Alberto

    وصف الملف: 52 páginas; application/pdf

    Relation: Congreso de la República de Colombia, LEY 1964 del 11 de Julio 2019 "Por medio de la cual se promueve el uso de Vehiculos Eléctricos en Colombia y se dictan otras disposiciones", Gaceta oficial del Congreso, Bogotá D.C, 2019.; Hussain Shareef, Md. Mainul Islam and Azah Mohamed, "A review of the state-of-the-art charging technologies placement methodologies and impacts of electric vehicles", Renewable and Sustainable Energy Reviews, vol. 64, pp. 403-420, 2016.; Robert Bass and Nicole Zimmerman, "Impacts of Electric Vehicle Charging on Electric Power Distribution Systems", Electrical and Computer Engineering Faculty Publications and Presentations, 2013.; K. Sridharan, M. Aakash, D. Karthik, M. H. M. Naleem and R. Vignesh, "A Smart AIS Based Portable Wireless Electric Charging Vehicles," 2021 Second International Conference on Electronics and Sustainable Communication Systems (ICESC), 2021, pp. 183-188, doi:10.1109/ICESC51422.2021.9532721.; H. N. de Melo, J. P. F. Trovão, P. G. Pereirinha, H. M. Jorge and C. H. Antunes, "A Controllable Bidirectional Battery Charger for Electric Vehicles with Vehicle-to-Grid Capability," in IEEE Transactions on Vehicular Technology, vol. 67, no. 1, pp. 114-123, Jan. 2018, doi:10.1109/TVT.2017.2774189.; L. Al-Musawi, R. Tran, M. Dang and N. Al-Mutawaly, "The impact of EV/PHEV chargers on residential loads - A case study," 2013 IEEE Transportation Electrification Conference and Expo (ITEC), 2013, pp. 1-4, doi:10.1109/ITEC.2013.6573512.; R. Jarvis and P. Moses, "Smart Grid Congestion Caused by Plug-in Electric Vehicle Charging," 2019 IEEE Texas Power and Energy Conference (TPEC), 2019, pp. 1-5, doi:10.1109/TPEC.2019.8662152.; Fenalco, ANDI, \textit{INFORME DE VEHÍCULOS ELÉCTRICOS E HÍBRIDOS A ENERO 2021.} Bogotá D.C: Fenalco, ANDI, 2021.; Ministerio de Transporte, República de Colombia TRANSPORTE EN CIFRAS 2020 - 2021. Bogotá D.C, 2021.; N. Mohan, T. M. Undeland, and W. P. Robbins, Power Electronics: Converters, applications, and design. Hoboken, NJ: John Wiley & Sons, 2003.; C. K. Alexander and S. M. N. O., Fundamentals of Electric Circuits. New York: McGraw-hill Education, 2017.; ENEL-Codensa. Tarifario Mayo 2022 - Bogotá D.C. available at https://www.enel.com.co/es/\\personas/tarifas-energia-enel-distribucion.html; J. P. Faria, R. L. Velho, M. R. Calado, J. A. Pombo, J. B. Fermeiro, and S. J. Mariano, A new charging algorithm for Li-ion battery packs based on Artificial Neural Networks, Batteries, vol. 8, no. 2, p. 18, 2022.; IEEE IEEE recommended practice and requirements for harmonic control in Electric Power Systems. 2014.; Ministerio de Transporte, República de Colombia. Viceministra de Transporte (E), María del Rosario Oviedo Publicaciones: Colombia tiene 4.603 vehículos eléctricos matriculados ante el RUNT available at https://www.mintransporte.gov.co/publicaciones/9709/colombia-tiene-4603-vehiculos-electricos-matriculados-ante-el-runt/; http://hdl.handle.net/1992/58661; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/

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    Relation: alma:57UTB_INST/bibs/collections/8114505200005731; alma:57UTB_INST/bibs/collections/8114505370005731; alma:57UTB_INST/bibs/collections/8114505560005731; alma:57UTB_INST/bibs/collections/8117716930005731; alma:57UTB_INST/bibs/collections/8114505240005731; alma:57UTB_INST/bibs/collections/8146587020005731; https://hdl.handle.net/20.500.12585/13187; alma:57UTB_INST/bibs/99537928505731