DocumentCode :
284
Title :
Optimized Design of a Novel Modular Tubular Transverse Flux Reluctance Machine
Author :
Popa, Dan-Cristian ; Micu, Dan D. ; Miron, Olivia-Ramona ; Szabo, Lorand
Author_Institution :
Dept. of Electr. Machines & Drives, Tech. Univ. of Cluj-Napoca, Cluj-Napoca, Romania
Volume :
49
Issue :
11
fYear :
2013
fDate :
Nov. 2013
Firstpage :
5533
Lastpage :
5542
Abstract :
This paper presents a new type of tubular electrical machine with a modular construction. The structure of the machine, concerning its construction, is discussed in the first part of the paper. A semi-analytical method based on the magnetic equivalent circuit calculation is used in order to obtain the flux densities in different parts of the iron core of the machine. A Gauss elimination procedure is applied to the system of linear equations resulted from the magnetic equivalent circuit, in order to express the flux in the air gap. The problem of optimization of the traction force is analyzed. The maximization of the function is handled with the Nonlinear Conjugate Gradient method and verified with a Gauss Newton algorithm. An application of the presented theory shows the usefulness of this approach. The results provided by the optimization method applied on a designed tubular machine illustrate its advantages. A numerical analysis performed on both a designed and then optimized structure confirmed the results obtained in the optimization process.
Keywords :
Newton method; conjugate gradient methods; equivalent circuits; linear machines; magnetic circuits; magnetic cores; magnetic flux; modular construction; optimisation; reluctance machines; traction; Gauss Newton algorithm; Gauss elimination procedure; air gap; flux density; iron core; linear equations; magnetic equivalent circuit; modular construction; modular tubular transverse flux reluctance machine; nonlinear conjugate gradient method; numerical analysis; optimized design; semianalytical method; traction force optimization; tubular electrical machine; Electromagnetic force; gradient method; magnetic circuit; numerical analysis; tubular linear machine;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2013.2269537
Filename :
6542742
Link To Document :
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