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Power Electronics

A Novel Protection Method to Enhance the Grid-Connected Capability of DFIG based on Wind Turbines

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References

  • D. Morten, and B. Ben. Global wind report 2022. 2022 [cited 2022 4 April].
  • D. H. Anca. Wind power in power systems, ed. T. Ackermann. West Sussex, UK: John Wiley & Sons, 2012.
  • J. Lopez, E. Gubia, P. Sanchis, X. Roboam, and L. Marroyo, “Wind turbines based on doubly fed induction generator under asymmetrical voltage dips,” IEEE Trans. Energy Convers., Vol. 23, no. 1, pp. 321–330, 2008.
  • B. Qin, H. Li, X. Zhou, J. Li, and W. Liu, “Low-voltage ride-through techniques in DFIG-based wind turbines: a review,” Applied Sciences, Vol. 10, no. 6, pp. 2154, 2020.
  • M. Altın, Ö Göksu, R. Teodorescu, P. Rodriguez, B.-B. Jensen, and L. Helle, “Overview of recent grid codes for wind power integration,” in 2010 12th International Conference on Optimization of Electrical and Electronic Equipment, 2010, pp. 1152–1160.
  • F. Iov, A. D. Hansen, P. Sørensen, and N. A. Cutululis. Mapping of grid faults and grid codes. Roskilde, Denmark: Risø National Laboratory, Technical University of Denmark, 2007.
  • B. B. Ambati, P. Kanjiya, and V. Khadkikar, “A low component count series voltage compensation scheme for DFIG WTs to enhance fault ride-through capability,” IEEE Trans. Energy Convers., Vol. 30, no. 1, pp. 208–217, 2015.
  • S. Kammoun, S. Sallem, and M. B. A. Kammoun, “Backstepping control for low-voltage ride through enhancement of DFIG-based wind turbines,” Arab. J. Sci. Eng., Vol. 42, no. 12, pp. 5083–5099, 2017.
  • N. H. Saad, A. A. Sattar, and A. E.-A. M. Mansour, “Low voltage ride through of doubly-fed induction generator connected to the grid using sliding mode control strategy,” Renewable Energy, Vol. 80, pp. 583–594, 2015.
  • M. Benbouzid, B. Beltran, Y. Amirat, G. Yao, J. Han, and H. Mangel, “Second-order sliding mode control for DFIG-based wind turbines fault ride-through capability enhancement,” ISA Trans., Vol. 53, no. 3, pp. 827–833, 2014.
  • M. J. Morshed, and A. Fekih, “A new fault ride-through control for DFIG-based wind energy systems,” Electr. Power Syst. Res., Vol. 146, pp. 258–269, 2017.
  • L. Shang, and J. Hu, “Sliding-mode-mased direct power control of grid-connected wind-turbine-driven doubly fed induction generators under unbalanced grid voltage conditions,” IEEE Trans. on Energy Convers., Vol. 27, no. 2, pp. 362–373, 2012.
  • V. Le, X. Li, Y. Li, T. L. T. Dong, and C. Le, “An innovative control strategy to improve the fault ride-through capability of DFIGs based on wind energy conversion systems,” Energies, Vol. 9, no. 2, pp. 69, 2016.
  • S. K. Raju, and G. Pillai, “Design and real time implementation of type-2 fuzzy vector control for DFIG based wind generators,” Renewable Energy, Vol. 88, pp. 40–50, 2016.
  • T. D. Vrionis, X. I. Koutiva, and N. A. Vovos, “A genetic algorithm-based low voltage ride-through control strategy for grid connected doubly fed induction wind generators,” IEEE Trans. Power Syst., Vol. 29, no. 3, pp. 1325–1334, 2014.
  • S. A. E. M. Ardjoun, M. Denai, and M. Abid, “A robust power control strategy to enhance LVRT capability of grid-connected DFIG-based wind energy systems,” Wind Energy, Vol. 22, no. 6, pp. 834–847, 2019.
  • A. Venkatesh, S. Nalinakshan, V. Jayasankar, V. Aneesh, S. Kiran, and V. Sivasubramanian, “Stability testing and restoration of a DEIG-based wind power plant with indirect grid control strategies,” IETE. J. Res., 1–15, 2021. https://doi.org/10.1080/03772063.2021.1934126.
  • A. H. Kasem, E. El-Saadany, H. El-Tamaly, and M. Wahab, “An improved fault ride-through strategy for doubly fed induction generator-based wind turbines,” IET Renew. Power Gener., Vol. 2, no. 4, pp. 201–214, 2008.
  • J. Yang, J. E. Fletcher, and J. O’Reilly, “A series-dynamic-resistor-based converter protection scheme for doubly-fed induction generator during various fault conditions,” IEEE Trans. Energy Convers., Vol. 25, no. 2, pp. 422–432, 2010.
  • L. G. Meegahapola, T. Littler, and D. Flynn, “Decoupled-DFIG fault ride-through strategy for enhanced stability performance during grid faults,” IEEE Trans. Sustain. Energy, Vol. 1, no. 3, pp. 152–162, 2010.
  • G. N. Sava, S. Costinas, N. Golovanov, S. Leva, and D. M. Quan, “Comparison of active crowbar protection schemes for DFIGs wind turbines,” in 2014 16th International Conference on Harmonics and Quality of Power (ICHQP), 2014, pp. 669–673.
  • K. S. Patel, and V. H. Makwana, “LVRT fulfilment of the DFIG-based WECS during symmetrical grid voltage dips,” IETE. J. Res., 1–13, 2022. https://doi.org/10.1080/03772063.2022.2055658.
  • G. Pannell, B. Zahawi, D. J. Atkinson, and P. Missailidis, “Evaluation of the performance of a DC-link brake chopper as a DFIG low-voltage fault-ride-through device,” IEEE Trans. Energy Convers., Vol. 28, no. 3, pp. 535–542, 2013.
  • M. Salles, J. Cardoso, A. Grilo, C. Rahmann, and K. Hameyer, “Control strategies of doubly fed induction generators to support grid voltage,” in 2009 IEEE International Electric Machines and Drives Conference, 2009, pp. 1551–1556.
  • A. Abdou, A. Abu-Siada, and H. Pota, “Improving the low voltage ride through of doubly fed induction generator during intermittent voltage source converter faults,” Journal of Renewable and Sustainable Energy, Vol. 5, no. 4, pp. 0043110, 2013.
  • A. Safaei, B. Vahidi, S. H. Hosseinian, and H. A. Abyaneh, “Fault ride-through capability improvement of doubly fed induction generator-based wind turbine using static volt ampere reactive compensator,” Journal of Renewable and Sustainable Energy, Vol. 7, no. 2, pp. 0023134, 2015.
  • A. O. Ibrahim, T. H. Nguyen, D.-C. Lee, and S.-C. Kim, “A fault ride-through technique of DFIG wind turbine systems using dynamic voltage restorers,” IEEE Trans. Energy Convers., Vol. 26, no. 3, pp. 871–882, 2011.
  • C. Wessels, F. Gebhardt, and F. W. Fuchs, “Fault ride-through of a DFIG wind turbine using a dynamic voltage restorer during symmetrical and asymmetrical grid faults,” IEEE Trans. Power Electron., Vol. 26, no. 3, pp. 807–815, 2011.
  • Y. M. Alharbi, A. S. Yunus, and A. A. Siada, “Application of UPFC to improve the LVRT capability of wind turbine generator," in 2012 22nd Australasian Universities Power Engineering Conference (AUPEC), 2012, pp. 1–4.
  • S. Vig, and B. S. Surjan, “Analysis of UPFC controller connected with multiple wind turbines by using IEEE Bus system,” in International Conference on Emerging Trends and Advances in Electrical Engineering and Renewable Energy, 2020, pp. 385–394.
  • P. Anderson, and A. Bose, “Stability simulation of wind turbine systems,” IEEE Trans. Power Appar. Syst., Vol. PAS-102, no. 12, pp. 3791–3795, 1983.
  • L. Saihi, B. Berbaoui, and H. Glaoui, “Robust control H∞ fuzzy of a doubly Fed induction generator integrated to wind power system,” Majlesi Journal of Electrical Engineering, Vol. 14, no. 1, pp. 59–69, 2020.
  • A. S. Tummala, H. K. Alluri, and P. Ramanarao, “Optimal control of DFIG wind energy system in multi-machine power system using advanced differential evolution,” IETE. J. Res., Vol. 66, no. 1, pp. 91–102, 2020.
  • S. Muyeen, et al., “Transient stability analysis of wind generator system with the consideration of multi-mass shaft model,” in 2005 International Conference on Power Electronics and Drives Systems, 2006, pp. 511–516.
  • F. Blaabjerg. Control of power electronic converters and systems: volume 2. Vol. 2. 2018: Academic Press.
  • L. V. Dai, and D. D. Tung, “Modeling for development of simulation tool: A case study of grid-connected doubly Fed induction generator based on wind energy conversion system,” International Journal of Applied Engineering Research, Vol. 12, no. 11, pp. 2981–2996, 2017.
  • L. V. Dai, D. D. Tung, and L. C. Quyen, “A highly relevant method for incorporation of shunt connected FACTS device into multi-machine power system to dampen electromechanical oscillations,” Energies, Vol. 10, no. 4, pp. 482, 2017.
  • S. Swain, and P. K. Ray, “Short circuit fault analysis in a grid connected DFIG based wind energy system with active crowbar protection circuit for ridethrough capability and power quality improvement,” Int. J. Electr. Power Energy Syst., Vol. 84, pp. 64–75, 2017.
  • S. B. Naderi, M. Negnevitsky, and K. M. Muttaqi, “A modified DC chopper for limiting the fault current and controlling the DC-link voltage to enhance fault ride-through capability of doubly-fed induction-generator-based wind turbine,” IEEE Trans. Ind. Appl., Vol. 55, no. 2, pp. 2021–2032, 2019.
  • IEEE Power and Energy Society Distribution Test Feeders. Available from: https://cmte.ieee.org/pes-testfeeders/resources/.

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