DIRECT TORQUE CONTROL OF ROTOR-TIED DFIG WITHOUT ROTOR POSITION SENSOR, 29-35.

Rajeshkumar M. Prasad and Mahmadasraf A. Mulla

References

  1. [1] R. Cardenas, R. Pena, S. Alepuz, and G. Asher, Overview of control systems for the operation of DFIGs in wind energy applications, IEEE Transactions on Industrial Electronics, 60(7), 2013, 2776–2798.
  2. [2] M. Liserre, R. Cardenas, M. Molinas, and J. Rodriguez, Overview of multi-MW wind turbines and wind parks, IEEE Transactions on Industrial Electronics, 58(4), 2011, 1081–1095.
  3. [3] Y. You, T.A. Lipo, and B. Kwon, Design and analysis of a novel grid-connected to rotor type doubly fed induction machine, IEEE Transactions on Magnetics, 48(2), 2012, 919–922.
  4. [4] G. Abad, J. Lopez, M.A. Rodriguez, L. Marroyo, and G. Iwanski, Doubly Fed Induction Machine: Modelling and Control for Wind Energy Generation (Piscataway, NJ: Wiley-IEEE Press, 2011).
  5. [5] N.K.S. Naidu and B. Singh, Grid-interfaced DFIG-based variable speed wind energy conversion system with power smoothening, IEEE Transactions on Sustainable Energy, 8(1), 2017, 51–58.
  6. [6] L. Xu and P. Cartwright, Direct active and reactive power control of DFIG for wind energy generation, IEEE Transactions on Energy Conversion, 21(3), 2006, 750–758.
  7. [7] M.R. Agha Kashkooli, S.M. Madani, and T.A. Lipo, Improved direct torque control for a DFIG under symmetrical voltage dip with transient flux damping, IEEE Transactions on Industrial Electronics, 67(1), 2019, 28–37.
  8. [8] 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, 2(3), 2011, 288–299.
  9. [9] R. Datta and V.T. Ranganathan, A simple position-sensorless algorithm for rotor-side field-oriented control of wound-rotor induction machine, IEEE Transactions on Industrial Electronics, 48(4), 2001, 786–793.
  10. [10] R. Pena, J.C. Clare, and G.M. Asher, Doubly fed induction generator using back-to-back PWM converters and its application to variable-speed wind-energy generation, IEE Proceedings – Electric Power Applications, 143(3), 1996, 231–241.
  11. [11] A. Karthikeyan, C. Nagamani, and G.S. Ilango, A versatile rotor position computation algorithm for the power control of a grid-connected doubly fed induction generator, IEEE Transactions on Energy Conversion, 27(3), 2012, 697–706.
  12. [12] R. Cardenas, R. Pena, J. Clare, G. Asher, and J. Proboste, MRAS observers for sensorless control of doubly-fed induction generators, IEEE Transactions on Power Electronics, 23(3), 2008, 1075–1084.
  13. [13] M.A.A. Rani, C. Nagamani, and G.S. Ilango, An improved rotor PLL (R-PLL) for enhanced operation of doubly fed induction machine, IEEE Transactions on Sustainable Energy, 8(1), 2017, 117–125.
  14. [14] M.W.K. Mbukani and N. Gule, Performance analysis of a PLL-based sensor-less control of rotor-tied DFIG systems, Proc. IEEE Int. Symp. SLED, Helsinki, Finland, 2018, 48–53.
  15. [15] R.M. Prasad and M.A. Mulla, A novel position-sensorless algorithm for field-oriented control of DFIG with reduced current sensors, IEEE Transactions on Sustainable Energy, 10(3), 2018, 1098–1108.
  16. [16] W. Leonhard, Control of Electrical Drives, 3rd ed. (Secaucus, NJ: Springer-Verlag New York, Inc., 2001).

Important Links:

Go Back