DocumentCode :
3357719
Title :
Modeling MCSRM with artificial neural network
Author :
Karacor, Mevlut ; Yilmaz, Kadir ; Kuyumcu, Feriha
Author_Institution :
Electr. Educ. Dept. turkey, Kocaeli Univ., Kocaeli
fYear :
2007
fDate :
10-12 Sept. 2007
Firstpage :
849
Lastpage :
852
Abstract :
In this study, modeling MCSRM (mutually couple switched reluctance machine) which is produced through modifications in wrap around structure of SRM with feed forward back propagation ANN (artificial neural network) is performed. Data obtained from angle, current, flux and torque components obtained through FEM analysis of MCSRM has been used in ANN training. In the course of literature research, no use of ANN in MCSRM modeling is detected and it is seen that algorithms consisting of analytical methods are preferred It is established that, in modeling studies which are based on such algorithms, the structure consists of thousands of loops and that these loops extend time needed for simulation; besides, it is seen that installation of loops in modeling become rather difficult. The data obtained from dynamic analysis of the model are compared with the data obtained from motor tests in the literature and it is witnessed that the model produces similar torques in similar voltage and current forms.
Keywords :
backpropagation; electric motors; finite element analysis; neural nets; power engineering computing; reluctance machines; FEM analysis; MCSRM modeling; artificial neural network; dynamic analysis; electrical motor; feed forward back propagation; finite element method; mutually couple switched reluctance machine; Algorithm design and analysis; Analytical models; Artificial neural networks; Feeds; Mutual coupling; Reluctance machines; Reluctance motors; Testing; Torque; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Machines and Power Electronics, 2007. ACEMP '07. International Aegean Conference on
Conference_Location :
Bodrum
Print_ISBN :
978-1-4244-0890-0
Electronic_ISBN :
978-1-4244-0891-7
Type :
conf
DOI :
10.1109/ACEMP.2007.4510569
Filename :
4510569
Link To Document :
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