Análisis y Obtención del Modelo Matemático de un Compensador Activo Monofásico en Derivación basado en Funciones de Conmutación y en Espacio de Estados Promediados
Main Article Content
Abstract
Downloads
Article Details
DECLARATION OF ORGINIALITY OF SUBMITTED ARTICLE
With this document, I/We certify that the article submitted for possible publication in the institutional journal INGENIO MAGNO of the Research Center Alberto Magno CIIAM of the University Santo Tomás, Tunja campus, is entirely of my(our) own writing, and is a product of my(our) direct intellectual contribution to knowledge.
All data and references to completed publications are duly identified with their respective bibliographical entries and in the citations thus highlighted. If any adjustment or correction is needed, I(we) will contact the journal authorities in advance.
Due to that stated above, I(we) declare that the entirety of the submitted material is in accordance with applicable laws regarding intellectual and industrial property, and therefore, I(we) hold myself(ourselves) responsible for any complaint related to it.
If the submitted article is published, I(we) declare that I(we) fully relinquish publishing rights of the article to the University Santo Tomás, Tunja campus. As remuneration for this relinquishment of rights, I(we) declare my(our) agreement to receive two (2) copies of the edition of the journal in which my(our) article appears.
References
Qiao, C., Smedley, K.M. & Maddaleno, F. (2001). A Comprehensive Analysis and Design of a Single Phase Active Power Filter with Unified Constant-frequency Integration Control. IEEE 32nd Annual Power Electronics
Specialists Conference, PESC 2001, vol. 3, pp. 1619-1625.
Joós, G. (1998). Simulation of Active Power Filters Using Switching Functions. 6th Workshop on Computers in Power Electronics, CIPE’98, pp. 163-167.
Lee, B.K. & Ehsani, M. (2001). A Simplified Functional Simulation Model for Three-Phase Voltage-Source Inverter Using Switching Function Concept. IEEE Transactions on industrial Electronics, vol. 48, pp. 309-321.
Vorperian, V. (1990). Simplified Analysis of PWM Converters Using Model of PWM Switch Part I: Continuous Conduction Mode. IEEE Transactions on Aerospace and Electronic Systems, vol. 26, pp. 490-496.
Rodrigues, M.D. & Braga, H.A. (2003). Experimental Validation Of A Mathematical Modeling Of Single-Phase Active Power Filter. IEEE International Symposium on Industrial Electronics, ISIE’03, pp. 1077-1082.
Erickson, R.W. & Maksimovic, D. (2002). Fundamentals of Power Electronics, New York: Kluwer Academic Publishers. Nasiri, A. & Emadi, A. (2003). Modeling, Simulation, and Analysis of Active Filter Systems - Using Generalized State Space Averaging Method. 29th Annual Conference Of The IEEE Industrial Electronics Society,
IECON ‘03, vol. 3, pp. 1999-2004.
Hua, C.C. & Li, C.H. (2010). A Shunt Active Power Filter Adopting Lyapunov. Journal of the Chinese Institute of Engineers, vol. 33, pp. 463-473.
Singh, B., Chandra, A. & Al-Haddad, K. (1996). An Improved Single Phase Active Power Filter with Optimum DC Capacitor. IEEE 22nd International Conference on Industrial Electronics, Control and Instrumentation, IECON’96, vol. 2, pp. 677-682.
Griñó, R., Costa-Castello, R. & Fossas, E. (2003). Digital Control of a Single-phase Shunt Active Filter. 34th IEEE Annual Power Electronics Specialist Conference, PESC ‘03,vol. 3, pp. 1038-1042.
Jiménez, F. R. (2011). Implementación De Una Técnica De Control No Lineal En Un DSP Para Un Compensador Activo Monofásico En Derivación. Tesis de maestría Universidad Nacional de Colombia, Bogotá, Colombia, pp. 1-143.