DocumentCode :
268171
Title :
Pulsed Magnetic Field Assisted Technique for Joining  \\hbox {MgB}_{2} Conductors for Persistent Mode MRI Magnets
Author :
Wozniak, Michał ; Glowacki, Bartek A. ; Setiadinata, S.B. ; Thomas, A.M.
Author_Institution :
Dept. of Mater. Sci. & Metall., Univ. of Cambridge, Cambridge, UK
Volume :
23
Issue :
3
fYear :
2013
fDate :
Jun-13
Firstpage :
6200104
Lastpage :
6200104
Abstract :
The commercial availability of long lengths of MgB2 conductor with an increasingly attractive price-to-performance ratio encourages its use in cryogen-free magnetic resonance imaging magnets. For such a magnet operating in persistent mode, connections between MgB2 wires must be completely superconducting to ensure long-term magnetic field stability. A new electromagnetically assisted technique for joining MgB2 conductors is proposed. An electrically conducting tube is electromagnetically formed around the wires to provide mechanical coupling. Mg + 2B powder is placed inside this tube between the wire ends with exposed MgB2 cores. Pulsed magnetic field compression of the tube densifies the joint powder, which is also redistributed into better contact with wire cores, and forms the tube to the shape of the joined wires. Cu powder has also been added into the Mg + 2B joint powder to minimize the reactive diffusion between Mg and Cu components. Finite element modeling of the deformation process will be presented, along with critical current measurements performed on a joint and on the individual wire for comparison. The applicability of this method for joining wires in reacted and unreacted form for magnet applications will be discussed.
Keywords :
boron alloys; critical current density (superconductivity); finite element analysis; magnesium alloys; magnetic resonance imaging; superconducting magnets; superconducting materials; MgB2; conductors; critical current measurements; cryogen-free magnetic resonance imaging magnets; deformation process; electrically conducting tube; electromagnetically assisted technique; finite element modeling; joint powder; long-term magnetic field stability; magnet applications; mechanical coupling; persistent mode MRI magnets; pulsed magnetic field assisted technique; pulsed magnetic field compression; reactive diffusion; wire cores; Electron tubes; Joints; Magnetic fields; Magnetic resonance imaging; Powders; Superconducting magnets; Wires; $hbox{MgB}_{2}$; Electromagnetic forming; joint; wire;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2012.2229093
Filename :
6362179
Link To Document :
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