DocumentCode :
45435
Title :
Iron Dominated 2 T 50 ^{\\circ} Superconducting Dipoles for FRIB Fragment Separator
Author :
Chouhan, S.S. ; Borden, T. ; Burkhardt, E.E. ; Patil, M. ; Swanson, R. ; Zeller, A.F.
Author_Institution :
Facility for Rare Isotope Beams, Michigan State Univ., East Lansing, MI, USA
Volume :
25
Issue :
3
fYear :
2015
fDate :
Jun-15
Firstpage :
1
Lastpage :
5
Abstract :
The Facility for Rare Isotope Beams under construction at Michigan State University, a new national user facility funded by the U. S. Department of Energy Office of Science will provide exotic rare isotope beams at energies of at least 200 MeV/u at a beam power of 400 kW. The proposed FRIB fragment separator has a preseparator consisting of the hot-cell and vertical section in the first stage followed by two more stages. Two large high performance dipole magnets with a 50° bend are required in the vertical section of the preseparator. Both cost and space constraints in the vertical section along with technical scope have pushed the requirement of the superconducting dipole peak field to 2.0 T. The design of a large magnetic gap (0.2 m), superferric dipole with magnetic rigidity as high as 8 T-m and effective length of 3.49 m is presented. The current design is a “warm iron” H-shaped magnet with nominal yoke length of 3.39 m and magnetic half-gap of 0.10 m. The major challenges are tight spaces in the vertical section, the compact coil and cryostat design and the unbalanced forces. The coil design is based on wet wound epoxy impregnated Formvar insulated conductor that provides ample current and temperature margins. This paper also presents the detailed magnet design including coil forces, coil restraint system, coil properties, conductor stability, quench analysis and full mechanical details.
Keywords :
cryostats; superconducting coils; superconducting magnets; FRIB fragment separator; beam power; coil forces; coil restraint system; compact coil; conductor stability; cryostat design; effective length; exotic rare isotope beams; high performance dipole magnets; hot-cell; iron dominated superconducting dipoles; large magnetic gap design; magnetic half-gap; magnetic rigidity; nominal yoke length; power 400 kW; preseparator vertical section; quench analysis; size 3.39 m; size 3.49 m; space constraint; superconducting dipole peak field; superferric dipole; unbalanced forces; warm iron H-shaped magnet; wet wound epoxy impregnated Formvar insulated conductor; Coils; Iron; Magnetic separation; Magnetic tunneling; Magnetostatics; Saturation magnetization; Superconducting magnets; Cold-mass; Dipole magnet; cold-mass; cryostat; dipole magnet; superconducting wire; superferric; warm iron;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2014.2365551
Filename :
6960089
Link To Document :
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