DocumentCode :
1075934
Title :
Magnetization Modeling of Twisted Superconducting Filaments
Author :
Satiramatekul, T. ; Bouillault, F. ; Devred, A. ; Leroy, D.
Author_Institution :
Kasetsart Univ., Kasetsart
Volume :
17
Issue :
2
fYear :
2007
fDate :
6/1/2007 12:00:00 AM
Firstpage :
3737
Lastpage :
3740
Abstract :
This paper presents a new finite element numerical method to analyse the coupling between twisted filaments in a superconducting multifilament composite wire. To avoid the large number of elements required by a 3D code, the proposed method makes use of the energy balance principle in a 2D code. The relationship between superconductor critical current density and local magnetic flux density is implemented in the program for the Bean and modified Kim models. The modeled wire is made up of six filaments twisted together and embedded in a low-resistivity matrix. Computations of magnetization cycle and of the electric field pattern have been performed for various twist pitch values in the case of a pure copper matrix. The results confirm that the maximum magnetization depends on the matrix conductivity, the superconductor critical current density, the applied field frequency, and the filament twist pitch. The simulations also lead to a practical criterion for wire design that can be used to assess whether or not the filaments are coupled.
Keywords :
critical current density (superconductivity); finite element analysis; magnetic flux; magnetisation; multifilamentary superconductors; 2D code; 3D code; Bean models; coupling analysis; critical current density; energy balance principle; finite element numerical method; low-resistivity matrix; magnetic flux density; magnetization cycle; magnetization modeling; modified Kim models; superconducting multifilament composite wire; twisted superconducting filaments; Conductivity; Copper; Critical current density; Finite element methods; Magnetic analysis; Magnetic flux density; Magnetization; Multifilamentary superconductors; Superconducting filaments and wires; Superconducting materials; Coupling currents; energy balance principle; magnetization; superconducting multifilament composite wire; twist;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2007.899414
Filename :
4278260
Link To Document :
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