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Power Quality Improvement Using Hybrid Passive Filter Configuration for Wind Energy Systems

  • Kececioglu, O. Fatih (Dept. of Electrical and Electronics Engineering, Kahramanmaras Sutcu Imam University) ;
  • Acikgoz, Hakan (Dept. of Electrical Science, Kilis 7 Aralik University) ;
  • Yildiz, Ceyhun (Dept. of Electrical and Electronics Engineering, Kahramanmaras Sutcu Imam University) ;
  • Gani, Ahmet (Dept. of Electrical and Electronics Engineering, Kahramanmaras Sutcu Imam University) ;
  • Sekkeli, Mustafa (Dept. of Electrical and Electronics Engineering, Kahramanmaras Sutcu Imam University)
  • Received : 2016.01.03
  • Accepted : 2016.08.06
  • Published : 2017.01.02

Abstract

Wind energy conversion systems (WECS) which consist of wind turbines with permanent magnet synchronous generator (PMSG) and full-power converters have become widespread in the field of renewable power systems. Generally, conventional diode bridge rectifiers have used to obtain a constant DC bus voltage from output of PMSG based wind generator. In recent years, together advanced power electronics technology, Pulse Width Modulation (PWM) rectifiers have used in WECS. PWM rectifiers are used in many applications thanks to their characteristics such as high power factor and low harmonic distortion. In general, L, LC and LCL-type filter configurations are used in these rectifiers. These filter configurations are not exactly compensate current and voltage harmonics. This study proposes a hybrid passive filter configuration for PWM rectifiers instead of existing filters. The performance of hybrid passive filter was tested via MATLAB/Simulink environment under various operational conditions and was compared with LCL filter structure. In addition, neuro-fuzzy controller (NFC) was preferred to increase the performance of PWM rectifier in DC bus voltage control against disturbances because of its robust and nonlinear structure. The study demonstrates that the hybrid passive filter configuration proposed in this study successfully compensates current and voltage harmonics, and improves total harmonic distortion and true power factor.

Keywords

References

  1. A. Urtasun, P. Sanchis, I. S. Martin, J. Lopez and L. Marroyo, "Modeling of small wind turbines based on PMSG with diode bridge for sensorless maximum power tracking," Renewable Energy, vol. 55, pp. 138-149, 2013. https://doi.org/10.1016/j.renene.2012.12.035
  2. A. Rolan, A. Luna, G. Vazquez and D. Azevedo, "Modeling of a variable speed wind turbine with a permanent magnet synchronous generator," in Proc. IEEE International Symposium on Industrial Electronics, 2009, pp. 734-739.
  3. H. M. Farh and A. M. Eltamaly, "Fuzzy logic control of wind energy conversion system," Journal of Renewable and Sustainable Energy, vol. 5, no. 2, 2013.
  4. R. S. Bajpai, M. Goyal and R. Gupta, "Modeling and control of variable speed wind turbine using laboratory simulator," Journal of Renewable and Sustainable Energy, vol. 7, 2015.
  5. Y. Snal, W. Mzc and A. Mohamed, "Implementation of different passive filter designs for harmonic mitigation: Power and Energy Conference," 2004, pp. 229-34.
  6. A. Hamadi, S. Rahmani and K. Al-Haddad, "A Hybrid Passive Filter Configuration for VAR Control and Harmonic Compensation," IEEE Transactions on Industrial Electronics, vol. 57, no. 7, pp. 2419-2433, 2010. https://doi.org/10.1109/TIE.2009.2035460
  7. M. Sekkeli and N. Tarkan, "Development of a novel method for optimal use of a newly designed reactive power control relay," International Journal of Electrical Power & Energy Systems, vol. 44, pp. 736-742, 2013. https://doi.org/10.1016/j.ijepes.2012.08.015
  8. S. Rahmani, A. Hamadi and K. Al-Haddad, "New Three Phase Hybrid Passive Filter to Dampen Resonances and Compensate Harmonics and Reactive Power for Any Type of Load under Distorted Source Conditions," Power Electronics Specialists Conference (PESC), 2007, pp. 2594-2599.
  9. P. Thirumoorthi and N. Yadaiah, "Design of current source hybrid power filter for harmonic current compensation," Simulation Modelling Practice and Theory, vol. 52, pp. 78-91, 2015. https://doi.org/10.1016/j.simpat.2014.11.008
  10. V. Dzhankhotov and J. Pyrhonen, "Passive LC Filter Design Considerations for Motor Applications," IEEE Transactions on Industrial Electronics, vol. 60, no. 10, pp. 4253-4259, 2013. https://doi.org/10.1109/TIE.2012.2209612
  11. S.N.A.L Yousif, M.Z.C. Wanik and A. Mohamed, "Implementation of different passive filter designs for harmonic mitigation," Power and Energy Conference, 2004, pp. 229-34.
  12. G. J. Wakileh, Power system harmonics fundamentals, analysis and filter design, Springer Verlag Press, New York, 2001.
  13. S. Chen and G. Joos, "Analysis and Comparison of Passive & Active Harmonic Suppression Filters in Distribution Systems," Canadian Conference on Electrical and Computer Engineering, 2000, pp. 615-619.
  14. L. Shuhui, J. Ishan, S. Raed and F. Xingang, "Directcurrent Vector Control of Three-phase Grid-connected Converter with L, LC, and LCL Filters," Electric Power Components and Systems, vol. 43, no.14, pp. 1644-1655, 2015. https://doi.org/10.1080/15325008.2015.1045310
  15. Z. Lidong, L. Harnefors and H.P. Nee, "Power synchronization control of grid connected voltage source converters," IEEE Trans. Power Syst., vol. 25, pp. 809-820. 2010. https://doi.org/10.1109/TPWRS.2009.2032231
  16. B. Singh, B.N. Singh, A. Chandra, K. Al-Haddad, A. Pandey, and D.P. Kothari "A Review of Three-Phase Improved Power Quality AC-DC Converters," IEEE Transactions on Industrial Electronics, vol. 51, pp. 641-660, 2004. https://doi.org/10.1109/TIE.2004.825341
  17. V. Blasko and V. Kaura, "A New Mathematical Model and Control of a Three-Phase AC-DC Voltage Source Converter," IEEE Transaction on Power Electronics, vol. 12, pp. 116-123, 1997. https://doi.org/10.1109/63.554176
  18. C. Cecati, A. Dell'Aquila, M. Liserre and A. Ometto "A fuzzy-logic based controller for active rectifier," IEEE Trans. Ind. Appl., vol. 39, no. 1, pp. 105-112, 2003. https://doi.org/10.1109/TIA.2002.807227
  19. J. Dannehl, C. Wessels, and F. Fuchs, "Limitations of voltage oriented PI current control of grid-connected PWM rectifiers with LCL filters," IEEE Transactions on Industrial Electronics, vol. 56, no. 2, pp. 380-388, 2009. https://doi.org/10.1109/TIE.2008.2008774
  20. M. Gokbulut, B. Dandil, and C. Bal, "Development and Implementation of Fuzzy-Neural Network Controller for Brushless DC Motors," Intelligent Automation and Soft Computing, vol. 13, no. 4, pp. 423-435, 2007.
  21. J.S.R. Jang, C.T. Sun, and E. Mizutani, Neuro-Fuzzy and Soft Computing, Prentice Hall, USA, 1997.
  22. R. Coteli, E. Deniz, B. Dandil, S. Tuncer and F. Ata, "Phase Angle Control of Three Level Inverter Based D-STATCOM Using Neuro-Fuzzy Controller," Advances in Electrical and Computer Engineering, vol. 12, no. 1, pp. 77-84, 2012. https://doi.org/10.4316/aece.2012.01013
  23. B. Dandil, "Fuzzy Neural Network IP Controller For Robust Position Control of Induction Motor Drive," Expert Systems with Applications, vol. 36, pp. 4528- 4534, 2009. https://doi.org/10.1016/j.eswa.2008.05.032
  24. M. Mohaddes, A. M. Gole, and P.G. Mclaren, "A Neural Network Controlled Optimal Pulse-Width Modulated STATCOM," IEEE Trans. Power Deliv., vol. 14, no. 2, pp. 481-488, 1999.