Modelling the E-J relation of high-Tc superconductors in an arbitrary current range

被引:97
作者
Duron, J [1 ]
Grilli, F [1 ]
Dutoit, B [1 ]
Stavrev, S [1 ]
机构
[1] Swiss Fed Inst Technol, CH-1015 Lausanne, Switzerland
来源
PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS | 2004年 / 401卷 / 1-4期
关键词
HTS materials; numerical modelling; V-I relation; AC losses;
D O I
10.1016/j.physc.2003.09.044
中图分类号
O59 [应用物理学];
学科分类号
摘要
For describing the E-J relation of high-T-c superconductors (HTS) in power applications, where the applied current I is generally limited by I, the critical state model, a piecewise linear generalization, or a simple power-law of the type E = E-c(J/J(c))(n) are most often used. The power-law cannot be used for modelling the E-J relation with I much greater than I-c due to the unbound exponential increase of the electric field for currents above I-c, while in reality the non-linear HTS resistivity is limited by its normal state value. This paper presents a modified E-J model for describing the V-I characteristic of HTS tapes with applied currents largely exceeding I-c. This model is based on the power-law in combination with a parallel metallic branch and has a limited resistivity-the HTS one in the normal state. It can be used for black-box modelling of superconductors in a unlimited current range, as well as for numerical modelling of superconducting devices, which can be operated at currents far exceeding I-c; for example fault-current limiters or cables with over-critical current excursions. The model has been tested in a simple numerical implementation and the modified power-law has been implemented in finite element method simulations. It is shown that for bulk material with currents above 1.3-2I(c) (depending on the n-value), the usual power-law results in excessive AC loss estimation. (C) 2003 Elsevier B.V. All rights reserved.
引用
收藏
页码:231 / 235
页数:5
相关论文
共 8 条
[1]  
CEDRAT SA, FR 38240 MEYLAN FRAN
[2]   Correlation between the normal state resistivity and the critical current density of Ag sheathed Bi(2223) tapes [J].
Grasso, G ;
Marti, F ;
Huang, Y ;
Perin, A ;
Flukiger, R .
PHYSICA C, 1997, 281 (04) :271-277
[3]  
Grover F.W., 1946, INDUCTANCE CALCULATI
[5]   Possible application of bulk textured Bi:2223 for current limitation [J].
Noudem, JG ;
Bourgault, D ;
Barbut, JM ;
Tixador, P ;
Tournier, R .
PHYSICA C, 2001, 349 (1-2) :47-52
[6]   Equivalent circuit model for superconductors [J].
Sjöström, M ;
Dutoit, B ;
Duron, J .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2003, 13 (02) :1890-1893
[7]   Comparison of numerical methods for modeling of superconductors [J].
Stavrev, S ;
Grilli, F ;
Dutoit, B ;
Nibbio, N ;
Vinot, E ;
Klutsch, I ;
Meunier, G ;
Tixador, P ;
Yang, YF ;
Martinez, E .
IEEE TRANSACTIONS ON MAGNETICS, 2002, 38 (02) :849-852
[8]   TEMPERATURE-DEPENDENCE OF CRITICAL CURRENTS IN SUPERCONDUCTING BI-2212/AG WIRES [J].
WESCHE, R .
PHYSICA C, 1995, 246 (1-2) :186-194