DocumentCode
14141
Title
Utilizing Triangular Mesh With MMEV to Study Hysteresis Losses of Round Superconductors Obeying Critical State Model
Author
Ruuskanen, Janne ; Stenvall, A. ; Lahtinen, Valtteri
Author_Institution
Electromagn., Tampere Univ. of Technol., Tampere, Finland
Volume
25
Issue
3
fYear
2015
fDate
Jun-15
Firstpage
1
Lastpage
5
Abstract
Nature´s minimum energy principle formulated in minimum magnetic energy variation (MMEV) and coupled with the Bean´s critical state model (CSM) has resulted in feasible tools to model hysteresis losses in superconductors. These tools have been applied for single wires as well as for multi-turn coils in two-dimensional modelling domains. However, so far the discretization of the modelling domain has always relied on regular rectangular meshes. Therefore, the mesh representation of round filaments suffers from large discretization error if the mesh is not refined considerably more than triangular meshing would need. In this paper, we study the utilisation of triangular mesh in such a hysteresis loss modelling tool. We present the required extension to the already available knowledge that is needed to implement such a modelling tool. With our home-brewed tool, we study the convergence of the simulated transport current losses in the cross-section of a round wire represented with triangular and rectangular meshes of different types and of different densities. According to the results, triangular meshing is considerably more efficient than rectangular meshing for simulating transport current losses in the investigated situation.
Keywords
Bean model; superconducting coils; 2D modelling domains; Bean´s critical state model; discretization error; home-brewed tool; hysteresis loss modelling tool; minimum magnetic energy variation; modelling domain discretization; multiturn coils; nature minimum energy principle; rectangular meshes; round filaments; round superconductors; round wire cross-section; simulated transport current loss convergence; single wires; triangular mesh; Computational modeling; Current density; High-temperature superconductors; Magnetic domains; Magnetic hysteresis; Superconducting magnets; Critical state model; critical state model; hysteresis losses; minimum magnetic energy variation; numerical modelling;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2014.2365408
Filename
6937139
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