DocumentCode :
742783
Title :
AC Losses in HTS Tapes and Devices With Transport Current Solved Through the Resistivity-Adaption Algorithm
Author :
Chen Gu ; Timing Qu ; Xiaofen Li ; Zhenghe Han
Author_Institution :
Dept. of Phys., Tsinghua Univ., Beijing, China
Volume :
23
Issue :
2
fYear :
2013
fDate :
4/1/2013 12:00:00 AM
Firstpage :
8201708
Lastpage :
8201708
Abstract :
Alternating current (ac) losses in high-temperature superconductor tapes and devices with transport current are solved by using the resistivity-adaption algorithm (RAA). The most advanced feature of the RAA is that it enables the simulation of any model derived from the flux motion theory on finite-element analysis (FEA) packages that have an eddy current solver. The principle of the RAA, as well as its realization on the ANSYS FEA package, is introduced. The simulation begins with the calculation of the ac loss of an ellipse and of strips with aspect ratios ranging from 50 to 2000. The accuracy and efficiency of the calculation are verified through comparisons with the Norris theoretical curves. The possible errors and the method to overcome such errors are discussed. The most significant improvement in the proposed RAA from that discussed in a previous study is that the RAA was proven to be valid for calculating the field-dependent critical state model by using the descendant process from +Im to -Im. We then extend this method to calculate the transport ac loss of a stack of ellipses with Jc(B) characteristic from a typical Bi2223/Ag tape and the transport ac loss of a stack of strips with Jc(B) characteristic from a typical YBCO-coated conductor.
Keywords :
Bean model; bismuth compounds; finite element analysis; high-temperature superconductors; silver; superconducting tapes; yttrium compounds; AC losses; ANSYS FEA package; Bi2223-Ag tape; BiPbSr2Ca2Cu3O-Ag; HTS devices; HTS tapes; Norris theoretical curves; RAA; YBCO-coated conductor; alternating current losses; aspect ratios; eddy current solver; ellipse stack; field-dependent critical state model; finite element analysis; flux motion theory; high-temperature superconductor tapes; resistivity-adaption algorithm; superconductor devices; transport ac loss; transport current; Accuracy; Conductivity; Conductors; Current density; High-temperature superconductors; Mathematical model; Strips; AC loss; finite-element analysis (FEA); flux motion; numerical simulation; resistivity adaption;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2013.2242069
Filename :
6472048
Link To Document :
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