DocumentCode :
1418399
Title :
The Iseult/Inumac Whole Body 11.7 T MRI Magnet R&D Program
Author :
Schild, T. ; Maksoud, W Abdel ; Aubert, G. ; Belorgey, J. ; Bermond, S. ; Berriaud, C. ; Bredy, P. ; Chesny, Ph ; Donati, A. ; Dubois, O. ; Gilgrass, G. ; Guillard, J.C. ; Hervieu, B. ; Juster, F.P. ; Lannou, H. ; Mayri, C. ; Meuris, C. ; Molinié, F. ; Nu
Author_Institution :
Irfu, CEA/Saclay, Gif-sur-Yvette, France
Volume :
20
Issue :
3
fYear :
2010
fDate :
6/1/2010 12:00:00 AM
Firstpage :
702
Lastpage :
705
Abstract :
A neuroscience research center with very high field MRI equipments has been opened in November 2006 by the CEA life science division. One of the imaging systems will require a 11.75 T magnet with a 900 mm warm bore. Regarding the large aperture and field strength, this magnet is a real challenge when compared to the largest MRI systems ever built, it is being developed within an ambitious R&D program, Iseult, focused on high field MRI. The conservative MRI magnet design principles are not readily applicable, other concepts taken from high energy physics or fusion experiments, namely the Tore Supra tokamak magnet system, will be used. The coil will thus be made of a niobium-titanium conductor cooled by a He II bath at 1.8 K, permanently connected to a cryoplant. Due to the high level of stored energy, about 340 MJ, and a relatively high nominal current, about 1500 A, the magnet will be operated in a non-persistent mode with a conveniently stabilized power supply. In order to take advantage of superfluid helium properties and regarding the high electromagnetic stresses on the conductors, the winding will be made of wetted double pancakes meeting the Stekly criterion for cryostability. The magnet will be actively shielded to fulfill the specifications regarding the stray field. In order to develop the magnet design on an experimental basis, an ambitious R&D program has been set-up based on magnet prototypes, high field test facility (Seht) and stability experiments. The main results from these experiments and their impact on the Iseult magnet design will be discussed.
Keywords :
biomedical MRI; biomedical equipment; cryogenics; neurophysiology; niobium alloys; superconducting coils; superconducting magnets; titanium alloys; type II superconductors; AD 2006 11; CEA life science division; He II cooling; Iseult-Inumac magnet; NbTi; Stekly cryostability criterion; Tore Supra tokamak magnet system; coil winding; cryoplant; electromagnetic stress; magnetic flux density 11.75 T; neuroscience research center; niobium-titanium conductor coil; nonpersistent mode operation; size 900 mm; superfluid helium properties; temperature 1.8 K; very high field MRI equipment; wetted double pancakes meeting; whole body MRI magnet; Magnetic resonance imaging; niobium titanium; superconducting magnet;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2010.2040149
Filename :
5415516
Link To Document :
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