DocumentCode
70381
Title
Computation of Losses in HTS Under the Action of Varying Magnetic Fields and Currents
Author
Grilli, Francesco ; Pardo, Edison ; Stenvall, A. ; Nguyen, Duc N. ; Weijia Yuan ; Gomory, Fedor
Author_Institution
Inst. for Tech. Phys., Karlsruhe Inst. of Technol., Karlsruhe, Germany
Volume
24
Issue
1
fYear
2014
fDate
Feb. 2014
Firstpage
78
Lastpage
110
Abstract
Numerical modeling of superconductors is widely recognized as a powerful tool for interpreting experimental results, understanding physical mechanisms, and predicting the performance of high-temperature-superconductor (HTS) tapes, wires, and devices. This is particularly true for ac loss calculation since a sufficiently low ac loss value is imperative to make these materials attractive for commercialization. In recent years, a large variety of numerical models, which are based on different techniques and implementations, has been proposed by researchers around the world, with the purpose of being able to estimate ac losses in HTSs quickly and accurately. This paper presents a literature review of the methods for computing ac losses in HTS tapes, wires, and devices. Technical superconductors have a relatively complex geometry (filaments, which might be twisted or transposed, or layers) and consist of different materials. As a result, different loss contributions exist. In this paper, we describe the ways of computing such loss contributions, which include hysteresis losses, eddy-current losses, coupling losses, and losses in ferromagnetic materials. We also provide an estimation of the losses occurring in a variety of power applications.
Keywords
dielectric losses; eddy current losses; high-temperature superconductors; superconducting tapes; HTS losses; ac loss; coupling losses; eddy current losses; ferromagnetic materials losses; high temperature superconductor devices; high temperature superconductor tapes; high temperature superconductor wires; hysteresis losses; varying currents; varying magnetic fields; Computational modeling; Current density; Electromagnetics; High-temperature superconductors; Magnetic hysteresis; Superconducting magnets; Alternate current (ac) losses; coupling losses; eddy-current losses; hysteresis losses; magnetic materials; numerical modeling;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2013.2259827
Filename
6648727
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