Variable Structure Control Applied in Wind Turbine Based on Induction Generator

Abdel Ghani Aissaoui, Ahmed Tahour, Mohamed Abid, Najib Essounbouli, Frederic Nollet, Moulay Idriss Chergui

Abstract


In this paper, the wind electrical conversion system (WECS) is described; the structure of WECS is based on the Induction generator. The global model of the WECS is presented. A study of the electrical parts (Induction machine and static converter) is developed. The goal of this paper is to control the power generated by the WECS to the grid. A strategy of control is developed signed based on the vector control applied to Induction Machine. A new controllers are designed using variable structure control with sliding mode to control active and reactive power. Simulation study was done to prove the validation of the strategy of control used and to show the high performance and robustness of the control technique used in power control.


Keywords


Wind energy, Induction generator, Vector Control, Wind turbine, Variable structure control.

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References


A. Mirecki, “Comparative study of enery conversion system dedicated to a small wind turbineâ€, “Etude comparative de chaînes de conversion d’énergie dédiées à une éolienne de petite puissanceâ€. Phd Thesis, National Polytechnic Institute of Toulouse, 5-April-2005

F. Poitiers, Study and Control of Asynchronous Generator for Use of Wind Energy, “Etude et Commande de Génératrice Asynchrone pour L’utilisation de L’énergie Eolienneâ€, Phd Thesis, University of Nantes, 19-december-2003.

Amei K., Igkayasu Y., Ohji T. and Sakui M., “A Maximum Power Control of Wind Generator System Using a Permanent Magnet Synchronous Generator and a Boost Chopper Circuitâ€, IEEE Power Conversion Conference (02/2002; DOI:10.1109/PCC.2002.998186ISBN: 0-7803-7156-9), Osaka 2002

A. Bouscayrol, Ph. Delarue, X. Guillaud, “Power strategies for maximum control structure of a wind energy conversion system with a synchronous machineâ€, Renewable Energy, Vol. 30 pp. 2273–2288, 2005.

V. I. Utkin, “Variable structure system with sliding modesâ€, IEEE Trans. on Automatic Control, vol. AC-22, April 1977, 210–222.

H. Buhler, Réglage par mode de glissement, Presses polytechniques romandes, Lausanne, 1986.

V. I. Utkin, “Sliding mode control design principles and applications to electrical drivesâ€, IEEE Trans. on Industrial Electronics, vol. 40, NO. 1, February 1993, 23-36.

Utkin V. I. and 0Å abanović A., “Sliding modes applications in power electronics and motion control systemsâ€, IEEE, International Symposium on Industrial Electronics, Vol. 1, July 1999, pp 22-31.

J. J. E. Slotine and W. Li, Applied nonlinear control, Prentice Hall, USA, 1998.

K. J. Astrom and B. Wittenmark, Adaptive control, Addison-Wesley, 1989.

Guldner J. and Utkin V. I., “The chattering problem in sliding mode systemsâ€, Fourteenth Intenational Symposium of Mathematical Theory of Networks and systems, MTNS2000, June 19-23, 2000, Perpignan, France.

G. A. Smith and K.A. Nigim, “Wind-energy Recovery by a Static Scherbius Induction Generatorâ€. Proc. IEE, N°128 (6), pp. 317-324, 1981.

H. Camblong, Minimizing the impact of disturbance from wind in the generation of electricity by variable speed wind turbines, “Minimisation de l’impact des perturbations d’origine éolienne dans la Génération d’électricité par des aérogénérateurs à vitesse variableâ€, Phd Thesis, ENSAM Bordeaux, 2003.

L. Refoufi, B. A. T. Al Zahawi and A.G. Jack, “Analysis and modelling of the steady state behavior of the static Kramer induction generatorâ€, IEEE Transactions on Energy Conversion,Vol. 14, Issue 3, 1999, pp. 333-339.

C. Mi, M. Filippa, J. Shen and N. Natarajan, “Modeling and Control of Variable Speed Constant Frequency Synchronous Generator With brushless Exciterâ€, IEEE Transactions on industry application, vol. 40, No, 2, pp565-573, March/april 2004.

S. El Aimani, “Modeling of different wind turbine technologies integrated into a network of medium voltageâ€, “Modélisation de différentes technologies d’éoliennes intégrées dans un réseau de moyenne tensionâ€, Phd Thesis, Ecole Centrale de Lille (ECL) jointly accredited with The University of Science and Technology of Lille 1 (USTL), 06 december 2004.

S.R. Guda, Modeling and power management of a hybrid wind-microturbine power generation. Master thesis, University of Bozeman, Monata. July 2005.

A.D. Hansen, C. Jauch, P. Sørensen, F. Iov and F. Blaabjergm, Dynamic wind turbine models in power system simulation tool DIgSILENT, Research projec, National laboratory of Riso, Roskilde. Décembre 2003.




DOI (PDF): https://doi.org/10.20508/ijrer.v2i4.310.g6067

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