DocumentCode
1097849
Title
Numerical Modeling of the AC Limiting Properties of Insulated, Conduction Cooled
Strands
Author
Majoros, M. ; Sumption, M.D. ; Collings, E.W. ; Doll, David
Author_Institution
Dept. of Mater. Sci. & Eng., Ohio State Univ., Columbus, OH, USA
Volume
19
Issue
3
fYear
2009
fDate
6/1/2009 12:00:00 AM
Firstpage
1872
Lastpage
1875
Abstract
It is known that MgB2-based strands may be used in fault current limiters as a low-cost alternative to high-temperature YBCO coated conductors. Numerical modeling of the ac limiting properties of MgB2 strands with Kapton insulation and conduction cooling have been performed using a finite element method. Two 2D ac Poisson equations, one for calculating the electric field and one for determining the heat transfer were solved simultaneously with input parameters taken from experimental results. As boundary conditions, we took the full non-linear curve of the heat flux into a cryocooler cold head as well as heat radiation from the free surfaces of the wire. The influence of different values and durations of fault electric fields were studied and the maximum temperatures, limiting currents and recovery times were calculated. Obtained results may be useful for understanding the behavior of different kinds of MgB2 multifilamentary wires under conditions encountered in fault current limiter devices.
Keywords
Poisson equation; cryogenics; fault current limiters; finite element analysis; heat transfer; high-temperature superconductors; magnesium compounds; multifilamentary superconductors; yttrium compounds; 2D ac Poisson equations; Kapton insulation; MgB2; ac limiting properties; conduction cooled strands; conduction cooling; cryocooler; electric field; fault current limiters; fault electric fields; finite element method; heat radiation; heat transfer; high-temperature superconductors; multifilamentary wires; numerical modeling; ${hbox {MgB}}_{2}$ ; multifilamentary superconductors; superconducting fault current limiter;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2009.2019649
Filename
5109570
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