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Reference Signal Generators for Distributed Compensation

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Porównanie przydatności różnych teorii mocy do sterowania kompensatorów kluczujących
Języki publikacji
EN
Abstrakty
EN
Various methods are used to generate the control reference signals for power electronics based compensators in three-phase distribution systems. In cases where increased flexibility and sharing duties across multiple compensators provides a cost benefit, the applicability of reference signal generation methods for distributed compensation applications should be evaluated. Shared compensation requires an understanding of power components that are present to enable priority based decisions with respect to the sharing. This paper provides an overview of several reference signal generation methods for power electronic converters when used in a cooperative fashion for sharing compensation duties within an electrical grid.
PL
Wiele różnych metod stosuje się dla generowania sygnałów sterowania kompensatorów energoelektronicznych w systemach rozdzielczych. W sytuacjach, w których rosnąca elestyczność i podział zadań kompensatorów rozproszonych daje korzyści finansowe, sterowanie takich kompensatorów jest ważnym przedmiotem zainteresowania. Kompensacja rozproszona wymaga opisu energetycznego systemu, umożliwiającego podział ról kompensatorów. Niniejszy artykuł przedstawia przegląd metod generowania sygnalów sterujących kompensatorów rozproszonych.
Rocznik
Strony
181--187
Opis fizyczny
Bibliogr. 22 poz., rys., wykr.
Twórcy
autor
  • University of South Carolina, Dept. of Electrical Engineering, Swearingen Engineering Center 3A30, Columbia, SC 29208, U.S.A
Bibliografia
  • [1] Czarnecki L. S., Pearce S. E., Compensation Objectives and CPC – Based Generation of Reference Signals for Shunt Switching Compensator Control, IET Trans. Power Electronics, March (2008).
  • [2] Buso S., Malesani L., Mattavelli P., Comparison of Current Control Techniques for Active Filter Applications, IEEE Trans. On Industial Electronics, Vol. 45 (1998), No. 5, 722-729.
  • [3] M. Dolen, R. D. Lorenz, “An Industrially Useful Means for Decomposition and Differentiation of Harmonic Components of Periodic Waveforms,” IEEE Industry Applications Conference, Vol. 2, 8-12, pp. 1016-1023, October 2000.
  • [4] Maza Ortega J. M., et al., Reference Current Computation Methods for Active Power Filters: Accuracy Assessment in the Frequency Domain, IEEE Trans. Power Electronics, Vol. 20 (2005), No. 2, 446-456.
  • [5] S. Rechka, E. Ngandui, J. Xu, P. Sicard, “A Comparative Study of Harmonic Detection Algorithms for Active Filters and Hybrid Active Filters,” Proceedings of IEEE 33rd Power Electronics Specialist Conference, Vol. 1, 23-27, June 2002, pp. 357-363.
  • [6] Buso S., Malesani L., Mattavelli P., Comparison of Current Control Techniques for Active Filter Applications, IEEE Trans. On Industial Electronics, Vol. 45 (1998), No. 5, 722-729.
  • [7] Asiminoaei L., Blaabjerg F., Hansen S., Evaluation of harmonic detection methods for active power filter applications, Twentieth Annual IEEE Applied Power Electronics Conference and Exposition, (2005) Vol. 1, 635 – 641.
  • [8] Firlit A., Current’s Physical Components Theory and p-q Power Theory in the Control of the Three-phase Shunt Active Power Filter, Electrical Power Quality and Utilisation Jounal, Volume XIII (2007), Number 1, 59-66.
  • [9] Konstantin Borisov, Herbert L. Ginn III, “Multifunctional VSC Based on a Novel Fortescue Reference Signal Generator, IEEE Transactions on Industrial Electronics , Vol. 57, No. 3, 2010, pp. 1002-1007.
  • [10] H. Ginn, G. Chen, “Flexible Active Compensator Control for Variable Compensation Objectives”, IEEE Trans. on Power Electronics, Vol. 23, Issue 6, Nov. 2008, pp. 2931 – 2941.
  • [11] Herbert L. Ginn, Guangda Chen, “CPC based converter control for systems with non-ideal supply voltage,” Przeglad Elecktrotechniczny (Electrical Review), Vol. 87, Jan. 2011, pp. 8-13.
  • [12] T. Lin and A. Domijan," Recursive Algorithm for Real-Time Measurement of Electrical Variables in Power Systems", IEEE Trans On Power Delivery, Volume 21, No. 1, Jan. 2006, pp. 15-22.
  • [13] Ginn H. L. III, A Hybrid Reference Signal Generator for Active Compensators, Electrical Power Quality and Utilisation Jounal, Volume XIII (2007), Number 1, 51-57.
  • [14] Czarnecki L. S., Power Theory of Electrical Circuits with Quasi-Periodic Waveforms of Voltages and Currents, ETEP, Vol. 6 (1996), No. 5.
  • [15] Czarnecki L. S., Orthogonal decomposition of the current in a three-phase nonlinear asymmetrical circuit with non-sinusoidal voltage, IEEE Trans. Instrum. Meas., Vol. IM-37 (1988), 30-34.
  • [16] Czarnecki L. S., “Powers of Asymmetrically Supplied Loads in Terms of the CPC Power Theory” Electrical Power Quality and Utilisation Journal, Vol.XIII, nº 1, 2007, pp. 97-104.
  • [17] Ginn, H.L., "Control method for grid-connected converters in systems with non-ideal supply voltage", Proceedings of Applied Measurements for Power Systems (AMPS), 2011 IEEE International Workshop on , 2011 , Page(s): 96 – 101.
  • [18] Benigni, A., Ginn, H.L., Lowen, A. , Ponci, F., Monti, A., “An embedded solution for multi-agent control of PEBB based power electronic systems”, Intelligent Energy Systems (IWIES), 2014 IEEE International Workshop on, pp. 12- 17.
  • [19] Po-Tai Cheng; Tzung-Lin Lee, "Distributed Active Filter Systems (DAFSs): A New Approach to Power System Harmonics," Industry Applications, IEEE Transactions on , vol.42, no.5, pp.1301-1309, Sept.-Oct. 2006.
  • [20] Tzung-Lin Lee, Po-Tai Cheng, "Design of a New Cooperative Harmonic Filtering Strategy for Distributed Generation Interface Converters in an Islanding Network," IEEE Transaction on power electronics, vol. 22, pp. 1919-1927, September 2007.
  • [21] Gholamreza Dehnavi, Herbert L. Ginn III “Concurrent Distributed Control of all Power Components in an Autonomous Microgrid” IEEE Power & Energy Society General Meeting, 2012.
  • [22] Gholamreza Dehnavi, Herbert L. Ginn III “Distributed Control of Orthogonal Current Components among Converters in an Autonomous Microgrid” IEEE Energy Conversion Congress & Exposition, 2012.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-35995629-5440-431d-9ed5-a884e710ece4
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