Title :
Final Design of the New Grenoble Hybrid Magnet
Author :
Fazilleau, P. ; Berriaud, C. ; Berthier, R. ; Debray, F. ; Hervieu, B. ; Joss, W. ; Juster, F.P. ; Massinger, M. ; Mayri, C. ; Queinec, Y. ; Pes, C. ; Pfister, R. ; Pugnat, P. ; Ronayette, L. ; Trophime, C.
Author_Institution :
DSM/IRFU, CEA/Saclay, Gif-sur-Yvette, France
fDate :
6/1/2012 12:00:00 AM
Abstract :
A CEA-CNRS French collaboration is currently developing a new hybrid magnet; this magnet combines a resistive insert composed of Bitter and polyhelix coils and a new large bore superconductor outsert to create an overall continuous magnetic field of 42+ T in a 34 mm warm aperture. The design of the superconducting coil outsert has been completed after thorough studies and successful experimental validation phases. Based on the novel development of a Nb-Ti/Cu Rutherford Cable On Conduit Conductor (RCOCC) cooled down to 1.8 K by the mean of a bath of superfluid helium at atmospheric pressure, the superconducting coil aims to produce a continuous magnetic field of 8.5 T in a 1.1 m cold bore diameter. The main results of the final design studies of the superconducting coil are presented including the 2D and 3D mechanical stress analysis, the conductor and coil specifications, the coil protection system as well as the required cryogenics infrastructure. The final design of the resistive insert coils is also described.
Keywords :
atmospheric pressure; cryogenics; high field effects; stress analysis; superconducting cables; superconducting coils; superconducting magnets; superfluidity; 2D mechanical stress analysis; 3D mechanical stress analysis; Bitter coils; CEA-CNRS French collaboration; RCOCC; Rutherford cable on conduit conductor; atmospheric pressure; coil protection system; coil specifications; continuous magnetic field; cryogenics infrastructure; grenoble hybrid magnet; large bore superconductor; magnetic flux density 8.5 T; polyhelix coils; resistive insert coils; superconducting coil outsert; superfluid helium bath; temperature 1.8 K; warm aperture; Conductors; Magnetic noise; Magnetomechanical effects; Saturation magnetization; Superconducting coils; Superconducting magnets; High-field magnets; hybrid magnets; superconducting cables; superconducting magnets;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2011.2177620