DocumentCode :
3285998
Title :
Optimized DTC by genetic speed controller and inverter based neural networks SVM for PMSM
Author :
El Janati El Idrissi, A. ; Zahid, Noureddine ; Jedra, Mohamed
Author_Institution :
Conception & Syst. Lab., Univ. Mohammed V Agdal, Rabat, Morocco
fYear :
2012
fDate :
18-20 Sept. 2012
Firstpage :
392
Lastpage :
395
Abstract :
A optimised speed controller for permanent magnet synchronous motor (PMSM) is investigated in this paper, in which genetic algorithm (GA), direct torque control (DTC) concept, and neural networks space vector modulation (NNSVM) are integrated to achieve high performance. A GA is integrated to optimize the proportional integral (PI) controller. While NNSVM is contributed to reduce more the ripples of mechanical speed and torque of PMSM, like that combination elements of artificial intelligence, proposed control reacts as, ensemble of intelligent human is gathered to solve a mathematical or physical problem in a little time than one of them. Simulation results show that the proposed controller provides high-performance dynamic characteristics and is robust with regard to plant parameter variations. Furthermore, comparing with the other controller, the harmonic ripples is much reduced by the proposed controller.
Keywords :
PI control; genetic algorithms; invertors; machine control; neurocontrollers; permanent magnet motors; support vector machines; synchronous motors; torque control; velocity control; DTC; GA; NNSVM; PI controller; PMSM; artificial intelligence; direct torque control; genetic algorithm; genetic speed controller; harmonic ripples; high-performance dynamic characteristics; intelligent human ensemble; inverter based neural networks SVM; neural network space vector modulation; optimised speed controller; permanent magnet synchronous motor; plant parameter variations; proportional integral controller; Biological neural networks; Genetic algorithms; Genetics; Induction motors; Permanent magnet motors; Stators; Torque;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Innovative Computing Technology (INTECH), 2012 Second International Conference on
Conference_Location :
Casablanca
Print_ISBN :
978-1-4673-2678-0
Type :
conf
DOI :
10.1109/INTECH.2012.6457760
Filename :
6457760
Link To Document :
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