Title :
for MRI Magnets: Test Coils and Superconducting Joints Results
Author :
Dong Keun Park ; Jiayin Ling ; Rindfleisch, M. ; Voccio, J. ; Hahn, Seungyong ; Bascunan, J. ; Tomsic, M. ; Iwasa, Yukikazu
Author_Institution :
Francis Bitter Magn. Lab., Massachusetts Inst. of Technol., Cambridge, MA, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
Among key design and operation issues for MgB2 relevant to MRI magnets are: uniformity of current-carrying capacity over long lengths (>;2 km) of wire; and reliability of a splicing technique. This paper presents experimental results of current-carrying capacities of a small test coil and joints, both made from MgB2 round wires, multifilament and monofilament (mono), manufactured by Hyper Tech Research, Inc. The test coils were wound with 95-m long unreacted, C (carbon)-doped MgB2 multifilament wire, sintered at 700°C for 90 min. The critical currents were measured in the 4.2 K-15 K and 0 T-5 T ranges. We have modified our original splicing technique, proven successful with unreacted, un-doped multifilament wire sintered at 570°, and applied it to splice both un-doped and C-doped mono wires sintered at 700°C. Most consistently good results were obtained using the un-doped mono wires. Also presented are results of a small joint-coil-PCS assembly of mono wire, operated in persistent mode at 50 A at >;10 K.
Keywords :
magnesium compounds; magnetic resonance imaging; splicing; superconducting coils; superconducting magnets; MRI magnets; MgB2; current-carrying capacity; reliability; splicing technique; superconducting joints; test coils; wire; Coils; Integrated circuits; Joints; MONOS devices; Magnetic resonance imaging; Superconducting magnets; Wires; ${rm MgB}_{2}$ coil; MRI magnet; monofilament ${rm MgB}_{2}$ wire; persistent current mode; superconducting joint;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2012.2185472