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Adaptive Nonlinear Control of an Asynchronous Machine using Neurone Networks Driven in Real Time

Nadir Kabache, University of Boumerdès, Algeria
Boukhemis Chetate , University of Boumerdès, Algeria

Abstract

To avoid the various constraints related to the feddback linearisation control (FBLC), in this paper we propose a new control approach for the induction motor control based on artificial neural network (ANN) trained on-line. The two ANN are used for the on-line reconstitution of the state feedback nessary for the FBLC. The training rules used results from a combination between the ANN properties, the adaptative non-linear control propriety and the non-linear adaptation rules. Via thes three techniques a training rules were extracted, these last transform the tracking errors into a means to adjust the used ANN behaviour so that they adapt with the various operation modes of induction motor.

Suggested Citation

Nadir Kabache and Boukhemis Chetate . " Adaptive Nonlinear Control of an Asynchronous Machine using Neurone Networks Driven in Real Time" Journal of the Extendable Energies (Revue des Energies Renouvelables) / Proceeding of the First International Conference on The Energy Efficiency / ISSN 1112-2242, pp. 457-463 -.- (2003): ---.