DocumentCode
1136818
Title
Experimental Results of a 7-T Force-Balanced Helical Coil for Large-Scale SMES
Author
Nomura, Shinichi ; Kasuya, Koji ; Tanaka, Norihiro ; Tsuboi, Kenji ; Tsutsui, Hiroaki ; Tsuji-Iio, Shunji ; Shimada, Ryuichi
Author_Institution
Tokyo Inst. of Technol., Tokyo
Volume
18
Issue
2
fYear
2008
fDate
6/1/2008 12:00:00 AM
Firstpage
701
Lastpage
704
Abstract
A superconducting force-balanced coil (FBC), which is geometrically one tenth the size of a 100 MJ class SMES coil, has been developed. The FBC is a helically wound hybrid coil of toroidal field coils and a solenoid. This coil configuration can minimize the required mass of the structure for induced electromagnetic forces. The model FBC with an outer diameter of 0.53 m will have 270 kJ magnetic energy at the critical magnetic field of 7.1 T using NbTi strands. The critical coil current and self inductance are 552 A and 1.8 H, respectively. The diameter of the NbTi strand is 1.17 mm. The hand-made winding of the model FBC was carried out without reinforcing materials such as stainless steel wires. The first experiment was conducted with liquid helium cooling. The quench properties of the model FBC were mainly investigated. The first quench current is 293 A, which is 53% of the critical coil current. Training phenomena were observed in the model FBC without any sudden decreases in the quench current. After 33 successive excitations the quench current improved to 419 A, and it was successfully excited up to 5.4 T without reinforcing materials for the NbTi strand. This fact demonstrates a primary capability of the FBC as a SMES coil.
Keywords
superconducting coils; 7-T force-balanced helical coil; NbTi; coil configuration; critical coil current; current 293 A; hand-made winding; helically wound hybrid coil; induced electromagnetic forces; large-scale SMES; liquid helium cooling; stainless steel wires; superconducting force-balanced coil; toroidal field coils; Electromagnetic forces; SMES; helical coil; quench properties;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2008.920552
Filename
4493382
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