DocumentCode :
838673
Title :
Stability evaluation of a conduction-cooled prototype LTS pulse coil for UPS-SMES
Author :
Kawagoe, Akifumi ; Sumiyoshi, Fumio ; Mito, Toshiyuki ; Chikaraishi, Hirotaka ; Maekawa, Ryuji ; Seo, Kazutaka ; Baba, Tomosumi ; Henmi, Tsutomu ; Okumura, Kagao ; Iwakuma, Masataka ; Hayashi, Kazuo ; Abe, Ryo
Author_Institution :
Kagoshima Univ., Japan
Volume :
15
Issue :
2
fYear :
2005
fDate :
6/1/2005 12:00:00 AM
Firstpage :
1891
Lastpage :
1894
Abstract :
The stability of a prototype conduction-cooled LTS pulse coil for UPS-SMES of 100 kJ was evaluated. This coil has been developed as a first step of a project to develop a 1 MW, 1 UPS-SMES to protect semiconductor chip production equipment and nuclear fusion experimental devices, etc, from momentary voltage drop and power failure. The winding conductor is an NbTi/Cu Rutherford cable, which is extruded with aluminum. This conductor has both low AC losses and high stability under specified orientation of changing transverse magnetic fields. The 100 kJ-coil are wound by the new winding method. In order to improve the heat conduction properties in the coil, Dyneema FRP and Litz wires are used as spacers. Litz wires were connected with the cryocooler as cooling paths. On the pulse operation, the operating current is reduced from 1000 A to 707 A in 1 s. In this paper, the thermal properties of the 100 kJ-coil are calculated by finite element method under pulse operation. In order to estimate the stability, a calibration experiment was carried out. Results indicated that our prototype LTS pulse coil has high stability to enable to allow over 10 times as large heat as AC losses.
Keywords :
finite element analysis; magnetic cooling; superconducting coils; superconducting magnet energy storage; superconducting materials; windings; 1 MW; 100 kJ; 1000 to 707 A; Dyneema FRP; LTS pulse coil; Litz wires; NbTi-Cu; Rutherford cable; UPS-SMES; conduction cooling; cryocooler; finite element method; heat conduction; low AC losses; low temperature superconductors; momentary voltage drop; nuclear fusion experimental devices; power failure; pulse operation; semiconductor chip production equipment; stability evaluation; superconducting magnetic energy storage; transverse magnetic fields; winding conductor; Coils; Conductors; Fusion reactors; Niobium compounds; Production equipment; Protection; Prototypes; Stability; Voltage; Wires; Conduction cooling; LTS; SMES; stability;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2005.849325
Filename :
1440024
Link To Document :
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