High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives

This paper presents a detailed comparison between viable adaptive intelligent torque control strategies of induction motor, emphasizing advantages and disadvantages. The scope of this paper is to choose an adaptive intelligent controller for induction motor drive proposed for high performance applic...

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Main Authors: Vasudevan M., Arumugam R., Paramasivam S.
Format: Article
Language:English
Published: Faculty of Technical Sciences in Cacak 2005-01-01
Series:Serbian Journal of Electrical Engineering
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/1451-4869/2005/1451-48690501093V.pdf
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spelling doaj-a349f65f199f415b93771e6893fff08a2020-11-25T00:47:22ZengFaculty of Technical Sciences in CacakSerbian Journal of Electrical Engineering1451-48692217-71832005-01-01219311610.2298/SJEE0501093V1451-48690501093VHigh-performance adaptive intelligent Direct Torque Control schemes for induction motor drivesVasudevan M.0Arumugam R.1Paramasivam S.2Anna University - Department of Electrical and Electronics Engineering, Chennai, IndiaistaistaThis paper presents a detailed comparison between viable adaptive intelligent torque control strategies of induction motor, emphasizing advantages and disadvantages. The scope of this paper is to choose an adaptive intelligent controller for induction motor drive proposed for high performance applications. Induction motors are characterized by complex, highly non-linear, time varying dynamics, inaccessibility of some states and output for measurements and hence can be considered as a challenging engineering problem. The advent of torque and flux control techniques have partially solved induction motor control problems, because they are sensitive to drive parameter variations and performance may deteriorate if conventional controllers are used. Intelligent controllers are considered as potential candidates for such an application. In this paper, the performance of the various sensor less intelligent Direct Torque Control (DTC) techniques of Induction motor such as neural network, fuzzy and genetic algorithm based torque controllers are evaluated. Adaptive intelligent techniques are applied to achieve high performance decoupled flux and torque control. This paper contributes: i) Development of Neural network algorithm for state selection in DTC; ii) Development of new algorithm for state selection using Genetic algorithm principle; and iii) Development of Fuzzy based DTC. Simulations have been performed using the trained state selector neural network instead of conventional DTC and Fuzzy controller instead of conventional DTC controller. The results show agreement with those of the conventional DTC.http://www.doiserbia.nb.rs/img/doi/1451-4869/2005/1451-48690501093V.pdfDirect Torque Controlinduction motorintelligent controlfuzzyneural networks and genetic algorithm
collection DOAJ
language English
format Article
sources DOAJ
author Vasudevan M.
Arumugam R.
Paramasivam S.
spellingShingle Vasudevan M.
Arumugam R.
Paramasivam S.
High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
Serbian Journal of Electrical Engineering
Direct Torque Control
induction motor
intelligent control
fuzzy
neural networks and genetic algorithm
author_facet Vasudevan M.
Arumugam R.
Paramasivam S.
author_sort Vasudevan M.
title High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
title_short High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
title_full High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
title_fullStr High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
title_full_unstemmed High-performance adaptive intelligent Direct Torque Control schemes for induction motor drives
title_sort high-performance adaptive intelligent direct torque control schemes for induction motor drives
publisher Faculty of Technical Sciences in Cacak
series Serbian Journal of Electrical Engineering
issn 1451-4869
2217-7183
publishDate 2005-01-01
description This paper presents a detailed comparison between viable adaptive intelligent torque control strategies of induction motor, emphasizing advantages and disadvantages. The scope of this paper is to choose an adaptive intelligent controller for induction motor drive proposed for high performance applications. Induction motors are characterized by complex, highly non-linear, time varying dynamics, inaccessibility of some states and output for measurements and hence can be considered as a challenging engineering problem. The advent of torque and flux control techniques have partially solved induction motor control problems, because they are sensitive to drive parameter variations and performance may deteriorate if conventional controllers are used. Intelligent controllers are considered as potential candidates for such an application. In this paper, the performance of the various sensor less intelligent Direct Torque Control (DTC) techniques of Induction motor such as neural network, fuzzy and genetic algorithm based torque controllers are evaluated. Adaptive intelligent techniques are applied to achieve high performance decoupled flux and torque control. This paper contributes: i) Development of Neural network algorithm for state selection in DTC; ii) Development of new algorithm for state selection using Genetic algorithm principle; and iii) Development of Fuzzy based DTC. Simulations have been performed using the trained state selector neural network instead of conventional DTC and Fuzzy controller instead of conventional DTC controller. The results show agreement with those of the conventional DTC.
topic Direct Torque Control
induction motor
intelligent control
fuzzy
neural networks and genetic algorithm
url http://www.doiserbia.nb.rs/img/doi/1451-4869/2005/1451-48690501093V.pdf
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