DocumentCode
1218668
Title
A Solid Nitrogen Cooled
“Demonstration” Coil for MRI Applications
Author
Yao, Weijun ; Bascuñán, Juan ; Kim, Woo-Seok ; Hahn, Seungyong ; Lee, Haigun ; Iwasa, Yukikazu
Author_Institution
Francis Bitter Magn. Lab., Massachusetts Inst. of Technol., Cambridge, MA
Volume
18
Issue
2
fYear
2008
fDate
6/1/2008 12:00:00 AM
Firstpage
912
Lastpage
915
Abstract
A 700-mm bore superconducting magnet was built and operated in our laboratory to demonstrate the feasibility of newly developed superconductor wire for fabricating MRI magnets. The magnet, an assembly of 10 coils each wound with a reacted and s-glass insulated wire 1-km long, was immersed in solid nitrogen rather than in a bath of liquid cryogen. This magnet was designed to operate in the temperature range 10-15 K, maintained by a cryocooler. A combination of this ldquowiderdquo temperature range and immersion of the winding in solid nitrogen enables this magnet to operate under conditions not possible with a low temperature superconductor (LTS) counterpart. Tested individually at 13 K, each coil could carry current up to 100 A. When assembled into the magnet, some coils, however, became resistive, causing the magnet to prematurely quench at currents ranging from 79 A to 88 A, at which point the magnet generated a center field of 0.54 T. Despite the presence of a large volume (50 liters) of solid nitrogen in the cold body, cooldown from 77 K to 10 K went smoothly.
Keywords
cryogenics; magnesium compounds; magnetic resonance imaging; quenching (thermal); superconducting coils; superconducting magnets; windings; wires (electric); MRI applications; MgB2; cryocooler; current 100 A; current 79 A to 88 A; low temperature superconductor; quenching; s-glass insulated wire; solid nitrogen cooled coil; superconducting magnet; superconductor wire; temperature 10 K to 77 K; winding; ${hbox{MgB}}_{2}$ ; High-temperature superconductors; magnetic resonance imaging (MRI); solid cryogen; superconducting magnets;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2008.920836
Filename
4520004
Link To Document