Fouad Berrabah

Work place: Department of Electrical Engineering, Faculty of Technology, University Mohamed Boudiaf of M’Sila, BP 166, Ichbilia 28000, Algeria

E-mail: Fouadberrabah1@gmail.com

Website:

Research Interests: Engineering

Biography

Fouad Berrabah was born in M’Sila, Algeria, on June 13, 1979. He received the degrees of Engineer and Magister on electromechanical Engineering from University Badji-Mokhtar, Annaba, Algeria in 2004 and 2009 respectively. In 2016, he received the doctorate degree in electromechanical Engineering from the same University. In 2018 he got the university habilitation form University of M’Sila, Algeria. Currently, he is a lecturer at University of M’Sila Algeria. His research interests are mainly in the area of electrical drives and power electronics. He has authored and co-authored many papers.

Author Articles
Adaptive RBFNN Strategy for Fault Tolerant Control: Application to DSIM under Broken Rotor Bars Fault

By Noureddine Layadi Samir Zeghlache Ali Djerioui Hemza Mekki Fouad Berrabah

DOI: https://doi.org/10.5815/ijisa.2019.02.06, Pub. Date: 8 Feb. 2019

This paper presents a fault tolerant control (FTC) based on Radial Base Function Neural Network (RBFNN) using an adaptive control law for double star induction machine (DSIM) under broken rotor bars (BRB) fault in a squirrel-cage in order to improve its reliability and availability. The proposed FTC is designed to compensate for the default effect by maintaining acceptable performance in case of BRB. The sufficient condition for the stability of the closed-loop system in faulty operation is analyzed and verified using Lyapunov theory. To proof the performance and effectiveness of the proposed FTC, a comparative study within sliding mode control (SMC) is carried out. Obtained results show that the proposed FTC has a better robustness against the BRB fault.

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