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Utilizing the synchronous condenser for robust functioning of wind farm implanted electric grid Cover

Utilizing the synchronous condenser for robust functioning of wind farm implanted electric grid

Open Access
|May 2019

References

  1. [1] US Canadian Power System Outage Task Force, “Interim Report Causes of the November 14 Blackout in the United States and Canada”, pp. 71, 2003.
  2. [2] F. O. Igbinovia, G. Fandi, J. Svec, Z. Müller, and J. Tlusty, “Comparative Review of Reactive Power Compensation Technologies”, IEEE 16th International Scientific Conference on Electric Power Engineering (EPE), Kouty nad Desnou, pp. 2–7, 2015.10.1109/EPE.2015.7161066
  3. [3] F. O. Igbinovia, G. Fandi, Z. M´’uller, J. Svec, and J. Tlusty, “Cost Implication Reactive Power Generating Potential of the Synchronous Condenser”, IEEE 2nd International Conference on Intelligent Green Building Smart Grid (IGBSG) Prague, pp. 1–6, 2016.10.1109/IGBSG.2016.7539450
  4. [4] F. O. Igbinovia, G. Fandi, Z. M´’uller, J. Svec, and J. Tlusty, “Optimal Location of the Synchronous Condenser in Electric-Power System Networks”, IEEE 17th International Scientific Conference on Electric Power Engineering (EPE) Prague, pp. 1–6, 2016.10.1109/EPE.2016.7521731
  5. [5] M. Ross and S. Kalsi, “Applications of Superconducting Synchronous Condensers in Wind Power Integration”, IEEE PES Transmission Distribution Conference Exhibition Dallas, pp. 272-277, 2006.10.1109/TDC.2006.1668503
  6. [6] F. O. Igbinovia, G. Fandi, Z. M´’uller, and J. Tlusty, “Progressive Usage of the Synchronous Machine in Electrical Power Systems”, Indian Journal of Engineering, vol. 15, pp. 117–126, 2018.
  7. [7] F. O. Igbinovia, G. Fandi, Z. M´’uller, and J. Tlusty, “Reputation of the Synchronous Condenser Technology in Modern Power Grid” Proceedings of the 11th International Conference on Power System Technology (POWERCON) Guangzhou, pp. 2108-2115, 2018.10.1109/POWERCON.2018.8601540
  8. [8] N. Masood, R. Yan, T. K. Saha, and S. Bartlett, “Post-Retirement Utilisation of Synchronous Generators to Enhance Security Performances in a Wind Dominated Power System”, IET Generation Transmission & Distribution vol. 10, no. 13, pp. 3314–3321, 2016.10.1049/iet-gtd.2016.0267
  9. [9] Energy Dept, Reports: US [Online], http://energy.gov, 2013,.
  10. [10] F. O. Igbinovia, G. Fandi, I. Ahmad, Z. Müller, and J. Tlusty, “Modeling Simulation of the Anticipated Effects of the Synchronous Condenser on an Electric-Power Network with Participating Wind Plants”, Sustainability vol. 10, no. 12, 4834, 2018.10.3390/su10124834
  11. [11] S. Heier, “Grid Integration of Wind Energy Conversion Systems”, 2nd ed, John Wiley & Sons 2006.
  12. [12] J. Dai, D. Liu, L. Wen, and X. Long, “Research on Power Coefficient of Wind Turbines based on SCADA Data”, Renewable Energy vol. 86, pp. 206–215, 2016.10.1016/j.renene.2015.08.023
  13. [13] A. Tummala, R. K. Velamati, D. K. Sinha, V. Indrajac, and V. H. Krishnad, “A Review on Small Scale Wind Turbines”, Renewable Sustainable Energy Reviews vol 56, pp. 1351–1371, 2016.10.1016/j.rser.2015.12.027
  14. [14] J. Lopez, E. Gubia, E. Olea, J. Ruiz, and L. Marroyo, “Ride through of Wind Turbines with Doubly Fed Induction Generator under Symmetrical Voltage Dips”, IEEE Transactions on Industrial Electronics vol. 56, no. 10, pp. 4246–4254, 2009.10.1109/TIE.2009.2028447
  15. [15] S. A. Eisa, W. Stone, and W. K. Wedeward, “Mathematical Modeling, Stability, Bifurcation Analysis”, IEEE Ninth Annual Green Technologies Conference (GreenTech) Denver, pp. 334–341, 2017.10.1109/GreenTech.2017.55
  16. [16] N. W. Miller, J. J. Sanchez-Gasca, W. W. Price, and R. W. Delmerico, “Dynamic Modeling of GE 1.5 and 3.6 MW Wind Turbine-Generators for Stability Simulations”, IEEE Power Engineering Society General Meeting Toronto, pp. 1977–1983, 2003.10.1109/PES.2003.1267470
  17. [17] R. Pena, J. C. Clare, and G. M. Asher, “Doubly Fed Induction Generator using Back-to-Back PWM Converters its Application to Variable-Speed Wind-Energy Generation”, IEE Proceedings-Electric Power Applications vol. 143, no. 3, pp. 231–241, 1996.10.1049/ip-epa:19960288
  18. [18] L. Xu and P. Cartwright, “Direct Active Reactive Power Control of DFIG for Wind Energy Generation”, IEEE Transactions on energy conversion vol. 21, no. 3, pp. 750–758, 2006.10.1109/TEC.2006.875472
  19. [19] B. C. Rabelo, W. Hofmann, J. L. da Silva, R. G. de Oliveira, and S. R. Silva, “Reactive Power Control Design in Doubly Fed Induction Generators for Wind Turbines”, IEEE Transactions on Industrial Electronics vol. 56, no. 10, pp. 4154–4162, 2009.10.1109/TIE.2009.2028355
  20. [20] E. Tremblay, S. Atayde, and A. Chandra, “Comparative Study of Control Strategies for the Doubly Fed Induction Generator in Wind Energy Conversion Systems: A DSP-based Implementation Approach”, IEEE Transactions on sustainable energy vol. 2, no. 3, pp. 288–299, 2011.10.1109/TSTE.2011.2113381
  21. [21] S. Li, T. A. Haskew, K. A. Williams, and R. P. Swatloski, “Control of DFIG Wind Turbine with Direct-Current Vector Control Configuration”, IEEE transactions on Sustainable Energy vol. 3, no. 1, pp. 1–11, 2012.10.1109/TSTE.2011.2167001
  22. [22] H. T. Le and S. Santoso, “Operating Compressed-Air Energy Storage as Dynamic Reactive Compensator for Stabilising Wind Farms under Grid Fault Conditions”, IET Renewable Power Generation vol. 7, no. 6, pp. 717–726, 2013.10.1049/iet-rpg.2011.0247
  23. [23] G. Fandi, I. Ahmad, F. O. Igbinovia, Z. Müller, J. Tlusty, and V. Krepl, “Voltage Regulation Power Loss Minimization in Radial Distribution Systems via Reactive Power Injection Distributed Generation Unit Placement”, Energies vol. 11, p. 1399, 2018.10.3390/en11061399
DOI: https://doi.org/10.2478/jee-2019-0022 | Journal eISSN: 1339-309X | Journal ISSN: 1335-3632
Language: English
Page range: 152 - 158
Submitted on: Jan 11, 2019
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Published on: May 13, 2019
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2019 Famous Oghomwen Igbinovia, Ghaeth Fandi, Juraj Kubica, Zdenek Muller, Frantisek Janicek, Josef Tlusty, published by Slovak University of Technology in Bratislava
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.