DOI QR코드

DOI QR Code

Harmonic Current Compensation based on Three-phase Three-level Shunt Active Filter using Fuzzy Logic Current Controller

  • Salim, Chennai (Dept. of Electrical Engineering, Nuclear Research Center of Birine) ;
  • Benchouia, M.T. (Dept. of Electrical Engineering, LGEB Biskra University) ;
  • Golea, A. (Dept. of Electrical Engineering, LGEB Biskra University)
  • 투고 : 2010.12.29
  • 심사 : 2011.04.25
  • 발행 : 2011.09.01

초록

A three-phase three-level shunt active filter controlled by fuzzy logic current controller which can compensate current harmonics generated by nonlinear loads is presented. Three-level inverters and fuzzy controllers have been successfully employed in several power electronic applications these past years. To improve the conventional pwm controller performance, a new control scheme based on fuzzy current controller is adopted for three-level (NPC) shunt active filter. The scheme is designed to improve compensation capability of APF by adjusting the current error using a fuzzy rule. The inverter current reference signals required to compensate harmonic currents use the synchronous reference detection method. This technique is easy to implement and achieves good results. To maintain the dc voltage across capacitor constant and reduce inverter losses, a proportional integral voltage controller is used. The simulation of global system control and power circuits is performed using Matlab-Simulink and SimPowerSystem toolbox. The results obtained in transient and steady states under various operating conditions show the effectiveness of the proposed shunt active filter based on fuzzy current controller compared to the conventional scheme.

키워드

참고문헌

  1. Aredes, M., Hafner, J. and Heumann, K, "Threephase four-wire shunt active filter control strategies," IEEE Transactions on Power Electronics, 1997, 12, (2), pp. 311-318. https://doi.org/10.1109/63.558748
  2. Udom. Khruathep, Suittichai Premrudeepreechacharn, Yuttana Kumsuwan, "Implementation of shunt active power filter using source voltage and source current detection," IEEE, pp. 2364-2351, 2008.
  3. Abdelaziz Zouidi; Farhat Fnaiech, Kamal Al-Haddad, "Voltage source inverter based three-phase shunt active power filter: Topology, Modeling and control strategies," IEEE, ISIE 2006, pp. 785-790, 2006.
  4. S. Bhattacharya, T.M Frank, D.M Divan, B.Banerjee, "Active filter system implementation," IEEE, Trans. On Industry Applications, Vol.4, Issue 5, pp. 47-63, 1998.
  5. M. Routimo, M. Salo, H.Tuusa, "Comparaison of voltage source and current source shunt active power filter," IEEE, Trans.On Power Electronics, Vol.22/Issue 2, pp. 636-643, 2007. https://doi.org/10.1109/TPEL.2006.890005
  6. O. Vodyakho, T.Kim, S.kwak, "Comparison of the space vector current controls for shunt active power filters," IEEE, pp. 612-617, 2008.
  7. O. Vodyakho, D.Hackstein, A.Steimel, T.Kim, "Novel direct current-space vector control for shunt active power filters based on three-level inverters ", IEEE, pp. 1868-1873, 2008.
  8. Bor-Ren Lin, Chun-Hao Huang, Tsung-Yu Yang and Yung-Chuan Lee, "Analysis and Implementation of Shunt Active Power Filter with Three-Level PWM Scheme", IEEE, pp. 1580-1885, 2003.
  9. Guiying Liu; Shiping Su; Peng Peng, "Intelligent Control and Application of All-function Active Power Filter," IEEE, International Conference on Intelligent Computation Technology and Automation, pp. 1078- 1081, 2008.
  10. Kerrouche Soumia, Krim Fateh, "Three-phase active power filter based on fuzzy logic controller," International Journal of Sciences and techniques of automatic Control & Computer engineering, Vol. 3,No 1, pp. 942-955, 2009.
  11. M. Sarra, K. Djazia, A. Chaoui, F. Krim, "Threephase active power filter with integrator-proportional control," 3rd International conference on electrical engineering, pp. 506-511, 2009.
  12. B. Sing, K. Haddad, A. Chandra, "A new control approach to three-phase active filter for harmonics and reactive power compensation," IEEE, Trans. Power Syst.13(1) , pp. 133-138, 1998. https://doi.org/10.1109/59.651624
  13. Hugh Rudnick, Juan Dixon and Luis Moran, "Delivering clean and pure power," IEEE, power & Energy magazine, pp. 32-40, 2003.
  14. A. Munduate, E. Figureres, G. Garcera, "Robust model-following control of a three-level neutral point clamped shunt active filter in the medium voltage range," Elsevier, Electrical Power and Energy Systems 31, pp. 577-588, 1998.
  15. Yun Wan, Jianguo Jiang, "The study of FPGA-based three-level SVM NPC inverter," IEEE, pp.1470-1474, 2009.
  16. E.E. El-Kholy, A. El-Hefnawy, Hamdy M. Mahrous, "Three-phase active power based on current controlled voltage source inverter," Elsevier, Electric power and Energy Systems 28, pp. 537-547, 2006. https://doi.org/10.1016/j.ijepes.2006.01.007
  17. S. GH Seifossadat, R. Kianinezhad, A. Ghasemi, M. Monadi, "Quality improvement of shunt active power filter, using optimized tuned harmonic passive filters," International Symposium on Power Electronics, Electrical Drives, Automation and motion, SPEEDAM 2008, pp. 1388-1393, 2008.
  18. Yingjie He, Jinjun Liu, Jian Tang, Zhaoan Wang, and Yunping Zou, "Research on control system of DC voltage for active power filters with three-level NPC inverter," IEEE, pp.1173-1178, 2008.
  19. H.B Zhang, S.J. Finney, A.M. Massoud, J.E. Fletcher, B.W. Williams, "Operation of a three-level NPC active power filter with unbalanced and non-linear loads," IEEE, pp.22-26.
  20. T.N. Reddy, M.V. Subramanyam, "Fuzzy logic controlled shunt active power filter for mitigation of harmonics with different membership functions," International Conference on Advances in Computing, Control on Advances in Computing, Control and Telecommunication Technologies, pp. 616-620, 2009.
  21. Wenjin Day, Baofu Wang, Youhui Xi, "Novel fuzzy logic controller for active power filter," International Conference on Computational Intelligence for Measurement Systems and Applications, 2009.
  22. Jiang You-hua, Chen Yong-Wei, "Neural network control techniques of hybrid active power filter," International Conference on artificial Intelligence and computational intelligence, pp. 26-30, 2009.

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