DocumentCode
110765
Title
Feasibility Studies of 0.7 mm
Strands and Rutherford Cable
Author
Kikuchi, A. ; Tsuchiya, K. ; Yamada, Ryota ; Barzi, E. ; Zlobin, A.V. ; Yoshida, Manabu ; Tomita, K. ; Takao, Tomoaki ; Nakamoto, Takamichi ; Takeuchi, T.
Author_Institution
Nat. Inst. for Mater. Sci. (NIMS), Tsukuba, Japan
Volume
23
Issue
3
fYear
2013
fDate
Jun-13
Firstpage
6001404
Lastpage
6001404
Abstract
We are planning to demonstrate a quadrupole magnet with magnetic mirror structure by using 0.7-mm Nb3Al strands. As feasibility studies for this program, we investigated an influence of the diameter reduction of Cu-stabilized Nb3Al strands from 1.0 to 0.7 mm. Wire breakages and Cu separations did not happen with applying the cold die-drawing. The non-Cu Jc and n-values of the 0.7 mm strands did not degrade and could keep the same performance of the 1.0 mm strands. Although irregular deformations of Nb-Al filaments slightly occurred, magnetization properties of the 0.7 mm strands are almost the same as those of the 1.0 mm strands. Ta interfilament matrix of the 0.7 mm strands was also effective to improve the low field instability at 4.2 K. In addition, 27 strands Rutherford cable has been made by using the 0.7 mm F1 strand without any troubles. All of 27 extracted strands taken from the F1 cable showed very uniform Ic performance at 4.2 K.
Keywords
aluminium alloys; deformation; magnetisation; niobium alloys; superconducting cables; superconducting magnets; wires (electric); Cu separations; Cu-stabilized strands; F1 cable; Nb-Al filaments; Nb3Al; cold die-drawing; diameter reduction; extracted strands; irregular deformations; low field instability; magnetic mirror structure; quadrupole magnet; size 0.7 mm to 1 mm; strand Rutherford cable; strand Ta interfilament matrix; strand magnetization properties; temperature 4.2 K; wire breakages; Coils; Integrated circuits; Magnetic separation; Mirrors; Niobium; Superconducting magnets; Wires; $hbox{Nb}_{3}hbox{Al}$ strand; $n$ -value; Critical current density; Rutherford cable; magnetization; vickers hardness;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2012.2237217
Filename
6400230
Link To Document