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Control of PWM rectifier under grid voltage dips

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper investigates control structure for grid connected three-phase two-level Voltage Source Converter (VSC) under distorted grid voltage conditions. Grid voltage is distorted by balanced and unbalanced voltage dips and higher harmonics. To address the problem, the control structure of converter is presented. The control system is a modification of Voltage Oriented Control (VOC) based on Dual Vector Current Controllers (DVCC). Grid synchronization under distorted voltage is achieved by employing Phase Locked Loop (PLL). Simulation and experimental results, which illustrate properties of proposed system, are presented.
Rocznik
Strony
337--343
Opis fizyczny
Bibliogr. 19 poz., rys.
Twórcy
autor
autor
autor
  • Institute of Control and Industrial Electronics, Warsaw University of Technology, 75 Koszykowa St., 00-662 Warsaw, Poland
Bibliografia
  • [1] M.H.J. Bollen, Understanding Power Quality Problems, IEEE Press, New Jersey, 2000.
  • [2] EN-50160, Voltage Characteristics of Electricity Supplied by Public Distribution Systems, CENELEC, Brussels, 1994.
  • [3] Grid Code, High and Extra High Voltage, E.ON Netz Gmbh, Bayreuth, 2006.
  • [4] M.P. Kazmierkowski, R. Krishnan, and F. Blaabjerg, Control in Power Electronics. Selected Problems, Academic Press, New York, 2002.
  • [5] M. Malinowski, M.P. Kazmierkowski, and A. Trzynadlowski, “A comparative study of control techniques for PWM rectifiers in AC adjustable speed drives”, IEEE Trans. Power Electronics 18 (6), 1114–1118 (2003).
  • [6] M. Malinowski, M. Jasinski, and M.P. Kazmierkowski, “Simple direct power control of three-phase PWM rectifier using space vector modulation (DPC-SVM)”, IEEE Trans. Industrial Electronics 51 (2), 447–454 (2004).
  • [7] P. Antoniewicz and M.P. Kazmierkowski, “Predictive direct power control of three-phase boost rectifier”, Bull. Pol. Ac.: Tech. 54 (3), 287–292 (2006).
  • [8] P. Antoniewicz and M.P. Kazmierkowski, “Virtual-flux-based predictive direct power control of AC/DC converters with online inductance estimation”, IEEE Trans. Industrial Electronics 55 (12), 4381–4390 (2008).
  • [9] M. Malinowski, M.P. Kazmierkowski, S. Hansen, F. Blaabjerg, and G.D. Marques, “Virtual-flux-based direct power control of three-phase PWM rectifiers”, IEEE Trans. on Industry Applications 37 (4), 1019–1027 (2001).
  • [10] I. Etxeberria-Otadui, U. Viscarret, M. Caballero, A. Rufer, and S. Bacha, “New optimized PWM VSC control structure under unbalanced voltage transient”, IEEE Trans. Industrial Electronics 54 (5), 2902–2914 (2007).
  • [11] G. Escobar, A. M. Stankovic, and P. Mattavelli, “An adaptive controller in stationary reference frame for d-statcom in unbalanced operation”, IEEE Trans. Industrial Electronics 51 (2), 401–409 (2004).
  • [12] P. Rioual, H. Pouliquen and J.P. Louis, “Regulation of a PWM rectifier In the unbalanced network state using a generalized model”, IEEE Trans. Power Electronics 11 (3), 495–502 (1996).
  • [13] M. Bongiorno, J. Svensson, and A. Sannino, “An advanced cascade controller for series-connected VSC for voltage dip mitigation”, IEEE Trans. Industry Applications 44 (1), 187–195 (2008).
  • [14] D. Santos-Martin, J. Rodriguez-Amenedo, and S. Arnalte, “Direct power control applied to doubly fed induction generator under unbalanced grid voltage conditions”, IEEE Trans. Power Electronics 23 (5), 2328–2336 (2008).
  • [15] H. Song and K. Nam, “Dual current control scheme for PWM converter under unbalanced input voltage conditions”, IEEE Trans. Industrial Electronics 46 (5), 953–959 (1999).
  • [16] D. Roiu, R. Bojoi, L.R. Limongi, and A. Tenconi, “New stationary frame control scheme for three phase pwm rectifiers under unbalanced voltage dips conditions”, IAS ’08. IEEE 1, 1–7 (2008).
  • [17] G. Ledwich and T.A. George, “Using phasors to analyze power system negative phase sequence voltages caused by unbalanced loads”, IEEE Trans. Power Systems 9 (3), 1226–1232 (1994).
  • [18] G. C. Paap, “Symmetrical components in the time domain and their application to power network calculations”, IEEE Trans. Power Systems 15 (2), 522–528 (2000).
  • [19] J.M.Aller, A. Bueno, and T. Paga, “Power systems analyzing using space-vector transformation”, IEEE Trans. Power Systems 17 (4), 957–965 (2002).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG8-0018-0005
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