DOI QR코드

DOI QR Code

Hardware Simulator Development for a 3-Parallel Grid-Connected PMSG Wind Power System

  • Park, Ki-Woo (School of Electrical and Computer Eng., Ajou University) ;
  • Lee, Kyo-Beum (School of Electrical and Computer Eng., Ajou University)
  • Received : 2010.03.24
  • Published : 2010.09.20

Abstract

This paper presents the development of a hardware simulator for a 3-parallel grid-connected PMSG wind power system. With the development of permanent magnetic materials in recent years, the capacity of a PMSG based wind turbine system, which requires a full-scale power converter, has been raised up to a few MW. Since it is limited by the available semiconductor technology, such large amounts of power cannot be delivered with only one power converter. Hence, a parallel connecting technique for converters is required to reduce the ratings of the converters. In this paper, a hardware simulator with 3-parallel converters is described and its control issues are presented as well. Some experimental results are given to illustrate the performance of the simulator system.

Keywords

References

  1. H. Li and Z. Chen, "Overview of different wind generator systems and their comparisons," IET Renewable Power Generation, Vol. 2, Issue 2, pp. 123-138, Jun. 2008. https://doi.org/10.1049/iet-rpg:20070044
  2. S. Muller, M. Deicke, and R.W. De Doncker, "Doubly fed induction generator systems for wind turbines," IEEE Trans. on Industry Applications Magazine, Vol. 8, Issue 3, pp. 26-33, May/Jun. 2002. https://doi.org/10.1109/2943.999610
  3. G.G. Park, S.H. Hwang, J.M. Kim, K.B. Lee, and D.C. Lee, "Reduction of current ripples due to current measurement errors in a doubly fed induction generator," Journal of Power Electronics, Vol. 10, No. 3, pp. 313-319, May 2010. https://doi.org/10.6113/JPE.2010.10.3.313
  4. S.T. Jou, S.B. Lee, Y.B. Park, and K.B. Lee, "Direct power control of a DFIG in wind turbines to improve dynamic responses," Journal of Power Electronics, Vol. 9, No. 5, pp.781-790, Sep. 2009.
  5. Y.S. Kim, A. Marathe, and D.J. Won, "Comparison of various methods to mitigate the flicker level of DFIG in considering the effect of grid conditions," Journal of Power Electronics, Vol. 9, No. 4, pp.612-622, Jul. 2009.
  6. F. Tang, X. Jin, Y. Tong, J. Liu, F. Zhou, and L. Ma, "Parallel interleaved grid-connected converters in MW-level wind power generation," Proc. of IEMDC, pp 789-796, May 2009.
  7. B. Han, H. Lee, and D. Yoon, "Hardware simulator development for PMSG wind power system," Proc. of PES, pp. 1-6, Jul. 2009.
  8. I.J. Gabe, V.F. Montagner, and H. Pinheiro, "Design and implementation of a robust current controller for VSI connected to the grid through an LCL filter," IEEE Trans. on Power Electronics, Vol. 24, No. 6, pp. 1444-1452, Jun. 2009. https://doi.org/10.1109/TPEL.2009.2016097
  9. H.G. Jeong, K.B. Lee, S. Choi, and W. Choi, "Performance improvement of LCL-filter based grid connected-inverters using PQR power transformations," IEEE Transactions on Power Electronics, Vol. 25, No. 5, pp. 1320-1330, May 2010. https://doi.org/10.1109/TPEL.2009.2037225
  10. E. Koutroulis and K. Kalaitzakis, "Design of a maximum power tracking system for wind-energy-conversion applications," IEEE Trans. on Industrial Electronics, Vol. 53, Issue 2, pp. 486-494, Apr. 2006. https://doi.org/10.1109/TIE.2006.870658
  11. W. Hu, Y. Wang, W. Yao, H. Zhang, J. Wu, and Z. Wang, "Modeling and control of zero-sequence current in multiple grid connected converter," Proc. of PESC, pp. 2062-2069, Jun. 2008.
  12. F.D. Freijedo, J. Doval-Gandoy, O. Lopez, and J. Cabaleiro, "Robust phase locked loops optimized for DSP implementation in power quality applications," Proc. of IECON, pp. 3052-3057, Nov. 2008.

Cited by

  1. Fault Diagnosis of a Voltage-Fed PWM Inverter for a Three-parallel Power Conversion System in a Wind Turbine vol.10, pp.6, 2010, https://doi.org/10.6113/JPE.2010.10.6.686
  2. A Novel Carrier-Based PWM Method for Vienna Rectifier With a Variable Power Factor vol.63, pp.1, 2016, https://doi.org/10.1109/TIE.2015.2464293
  3. Fault diagnosis of three-parallel voltage-source converter for a high-power wind turbine vol.5, pp.7, 2012, https://doi.org/10.1049/iet-pel.2011.0109
  4. Variable Step-Size MPPT Control based on Fuzzy Logic for a Small Wind Power System vol.17, pp.3, 2012, https://doi.org/10.6113/TKPE.2012.17.3.205
  5. Sensorless MPPT Control of a Grid-Connected Wind Power System Using a Neuro-Fuzzy Controller vol.16, pp.5, 2011, https://doi.org/10.6113/TKPE.2011.16.5.484
  6. Neutral-Point Voltage Balancing Method for Three-Level Inverter Systems with a Time-Offset Estimation Scheme vol.13, pp.2, 2013, https://doi.org/10.6113/JPE.2013.13.2.243
  7. Design of an LCL-Filter for Three-Parallel Operation of Power Converters in Wind Turbines vol.13, pp.3, 2013, https://doi.org/10.6113/JPE.2013.13.3.437
  8. A 2ndOrder Harmonic Compensation Method for Wind Power System Using a PR Controller vol.8, pp.3, 2013, https://doi.org/10.5370/JEET.2013.8.3.507
  9. Active Damping for Wind Power Systems with LCL Filters Using a DFT vol.12, pp.2, 2012, https://doi.org/10.6113/JPE.2012.12.2.326
  10. A control scheme to fulfill the grid-code under various fault conditions in the grid-connected wind turbines vol.96, pp.2, 2014, https://doi.org/10.1007/s00202-013-0290-x
  11. Design and Implementation of a Reverse Matrix Converter for Permanent Magnet Synchronous Motor Drives vol.10, pp.6, 2015, https://doi.org/10.5370/JEET.2015.10.6.2297
  12. Stability Improvement of Distributed Power Generation Systems with an LCL-Filter Using Gain Scheduling Based on Grid Impedance Estimations vol.11, pp.4, 2011, https://doi.org/10.6113/JPE.2011.11.4.599
  13. Inertia compensation scheme for wind turbine simulator based on deviation mitigation vol.5, pp.2, 2017, https://doi.org/10.1007/s40565-016-0202-y
  14. An Improved Maximum Power Point Tracking Method for Wind Power Systems vol.5, pp.12, 2012, https://doi.org/10.3390/en5051339