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Control de microrredes eléctricas de potencia: un enfoque hamiltoniano

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Control de microrredes eléctricas de potencia: un enfoque hamiltoniano

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Espinosa-Pérez, G. (2022). Control de microrredes eléctricas de potencia: un enfoque hamiltoniano. Revista Iberoamericana de Automática e Informática industrial. 19(4):442-451. https://doi.org/10.4995/riai.2022.17020

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/187039

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Título: Control de microrredes eléctricas de potencia: un enfoque hamiltoniano
Otro titulo: Control of electric power microgrids: a hamiltonian approach
Autor: Espinosa-Pérez, Gerardo
Fecha difusión:
Resumen:
[EN] In this paper the control problem of Power Microgrids is approached from the Passivity based Control perspective. The structure of a basic inner control scheme is proposed which guarantees that the variables associated ...[+]


[ES] En este trabajo se aborda el problema de control de Microrredes de potencia desde la perspectiva del Control Basado en Pasividad. Se presenta un esquema de control interno básico por medio del cual se garantiza que ...[+]
Palabras clave: Electric Power Systems , Microgrids , Port-controlled Hamiltonian Systems , Passivity-based Control , Microrredes , Sistemas Hamiltonianos Controlados por Puerto , Control basado en Pasividad , Sistemas Eléctricos de Potencia
Derechos de uso: Reconocimiento - No comercial - Compartir igual (by-nc-sa)
Fuente:
Revista Iberoamericana de Automática e Informática industrial. (issn: 1697-7912 ) (eissn: 1697-7920 )
DOI: 10.4995/riai.2022.17020
Editorial:
Universitat Politècnica de València
Versión del editor: https://doi.org/10.4995/riai.2022.17020
Código del Proyecto:
info:eu-repo/grantAgreement/UNAM//IN11801
Agradecimientos:
Los resultados presentados en este trabajo han sido desarrollados en colaboración con la Dra. Sofía Ávila-Becerril, el Dr. Oscar Danilo Montoya, el Dr. Alejandro Garcés, el Dr. Juan Machado y el Dr. Isaac Ortega-Velázquez. ...[+]
Tipo: Artículo

References

Agundis-Tinajero, G.,Segundo-Ramirez, J., Visairo-Cruz, N., Savaghebi, M., Guerrero, J.,Barocio, E., 2019. Power flow modeling of islanded AC microgrids with hierarchical control. International Journal of Electrical Power & Energy Systems 105, 28-36. https://doi.org/10.1016/j.ijepes.2018.08.002

Alrayah Hassan, M., Yigang, H., 2020. Constant Power Load Stabilization in DC Microgrid Systems Using Passivity-Based Control With Nonlinear Disturbance Observer. IEEE Access 8, 92393-92406. https://doi.org/10.1109/ACCESS.2020.2992780

Avila-Becerril, S., Espinosa-Perez, G., Fernandez, P., 2016. Dynamic Characterization of Typical Electrical Circuits via Structural Properties. Mathematical Problems in Engineering 2016. https://doi.org/10.1155/2016/7870462 [+]
Agundis-Tinajero, G.,Segundo-Ramirez, J., Visairo-Cruz, N., Savaghebi, M., Guerrero, J.,Barocio, E., 2019. Power flow modeling of islanded AC microgrids with hierarchical control. International Journal of Electrical Power & Energy Systems 105, 28-36. https://doi.org/10.1016/j.ijepes.2018.08.002

Alrayah Hassan, M., Yigang, H., 2020. Constant Power Load Stabilization in DC Microgrid Systems Using Passivity-Based Control With Nonlinear Disturbance Observer. IEEE Access 8, 92393-92406. https://doi.org/10.1109/ACCESS.2020.2992780

Avila-Becerril, S., Espinosa-Perez, G., Fernandez, P., 2016. Dynamic Characterization of Typical Electrical Circuits via Structural Properties. Mathematical Problems in Engineering 2016. https://doi.org/10.1155/2016/7870462

Avila-Becerril, S., Espinosa-Perez, G., Montoya, O., Garces, A., 2020. Passivity-based control of islanded microgrids with unknown power loads. IMA Journal of Mathematical Control and Information 37, 1548-1573. https://doi.org/10.1093/imamci/dnaa025

Avila-Becerril, S., Espinosa-Perez, G., Machado, J., 2019. On the dynamic solution of power flow equations for microgrids control. IEEE 58th Conference on Decision and Control. https://doi.org/10.1109/CDC40024.2019.9029596

Avila-Becerril, S., Espinosa-Perez, G., 2021. Control of islanded microgrids considering power converter dynamics. International Journal of Control 94, 2520-2530. https://doi.org/10.1080/00207179.2020.1713402

Avila-Becerril, S., Espinosa-Perez, G., Machado, J., 2022. A Hamiltonian Control Approach for Electric Microgrids with Dynamic Power Flow Solution. AUTOMATICA. En prensa. https://doi.org/10.1016/j.automatica.2022.110192

Bollobas, B., 2018. Modern graph theory. Springer Science & Business Media.

Brayton, R., Moser, J., 1964. A theory of nonlinear networks I. Quarterly Applied Mathematics 22, 1-33. https://doi.org/10.1090/qam/169746

Cisneros, R., Pirro, M., Bergna, G., Ortega, R., Ippoliti, G., Molinas, M., 2015. Global tracking passivity-based pi control of bilinear systems: Application to the interleaved boost and modular multilevel converters. Control Engineering Practice 43, 109-119. https://doi.org/10.1016/j.conengprac.2015.07.002

Guerrero, J., Chandorkar, M., Lee, T., Loh, P., 2013. Advanced control architectures for intelligent microgrids, part I: decentralized and hierarchical control. IEEE Transactions on Industrial Electronics 60, 1254-1262. https://doi.org/10.1109/TIE.2012.2194969

Guerrero, J., Kandari R. (Ed.), 2021. Microgrids: Modeling, Control, and Applications. Academic Press.

Hart, P.J., Goldman, J., Lasseter, R.H., Jahns, T.M., 2020. Impact of Harmonics and Unbalance on the Dynamics of Grid-Forming, Frequency-DroopControlled Inverters. IEEE Journal of Emerging and Selected Topics in Power Electronics 8, 976-990. https://doi.org/10.1109/JESTPE.2019.2949303

Han, H., Hou, X., Yang, J., Wu, J., Su, M., Guerrero, J., 2016. Review of power sharing control strategies for islanding operation of AC microgrids. IEEE Transactions on Smart Grid 7, 200-215. https://doi.org/10.1109/TSG.2015.2434849

Khalil, H., 1996. Nonlinear systems. Prentice-Hall.

Montoya, O., Gil-Gonzalez, W., Avila-Becerril, S., Garces, A., Espinosa-Perez, G., 2019. Integracion de REDs en Redes AC: una Familia de Controladores Basados en Pasividad. Revista Iberoamericana de Automatica e Informatica industrial 16, 212-221. https://doi.org/10.4995/riai.2018.10666

Mujica, H., Espinosa-Perez, G., 2014. Control no lineal basado en pasividad de motores de induccion para alto desempeño dinamico. Revista Iberoamericana de Automatica e Informatica industrial 11, 32-43. https://doi.org/10.1016/j.riai.2013.08.001

Mylvaganam, T., Ortega, R., Machado, J., Astolfi, A., 2018. Dynamic zero finding for algebraic equations. European Control Conference (ECC 2018). https://doi.org/10.23919/ECC.2018.8550185

Ortega-Velazquez, I., Avila-Becerril, S., Espinosa-Perez, G., 2020. A Droop Approach for the Passivity-based Control of Microgrids. IFACPapersOnLine 53, 12962-12967. https://doi.org/10.1016/j.ifacol.2020.12.2137

Ortega-Velazquez, I., Avila-Becerril, S., Espinosa-Perez, G., Ojeda, R., 2021. An improved passivity-based control for inverter-based Microgrids. Congreso Nacional de Control Automatico AMCA 2021.

Ortega, R., Loria, A., Nicklasson, J., Sira-Ramirez, H., 2013. Passivity-based control of Euler-Lagrange systems: mechanical, electrical and electromechanical applications. Springer Science & Business Media.

Ortega, R., Romero, J.G., Borja, P., Donaire, A., 2021. PID Passivity-Based Control of Nonlinear Systems with Applications. John Wiley Sons. https://doi.org/10.1002/9781119694199

Rocabert, J., Luna, A., Blaabjerg, F., Rodriguez, P., 2012. Control of power converters in AC microgrids. IEEE Transactions on Power Electronics 27, 4734-4749. https://doi.org/10.1109/TPEL.2012.2199334

Sepulchre, R., Jankovic, M., Kokotovic, P., 2012. Constructive nonlinear control. Springer Science & Business Media.

Van del Schaft, A., 2017. L2-Gain and Passivity Techniques in Nonlinear Control. Springer International Publishing AG. https://doi.org/10.1007/978-3-319-49992-5

Wellstead, P., 1979. Introduction to physical system modelling. Academic Press London.

Zhong, Q., Hornik, T., 2013. Control of power inverters in Renewable energy and smart grid integration. Wiley. https://doi.org/10.1002/9781118481806

Zhongwen, L., Chuanzhi, Z., Peng, Z., Haibin, Y., Shuhui, L., 2018. Fully Distributed Hierarchical Control of Parallel Grid-Supporting Inverters in Islanded AC Microgrids. IEEE Transactions on Industrial Informatics 14, 679-690. https://doi.org/10.1109/TII.2017.2749424

Zonetti, D., Bergna-Diaz, G., Ortega, R., Monshizadeh, N., 2022. PID passivity-based droop control of power converters: Large-signal stability, robustness and performance. International Journal of Robust and Nonlinear Control 32, 1769-1795. https://doi.org/10.1002/rnc.5917

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