DocumentCode :
1067836
Title :
Development and manufacturing of a Nb3Sn quadrupole magnet Model at CEA/Saclay for TESLA Interaction Region
Author :
Durante, M. ; Devred, A. ; Fratini, M. ; Leboeuf, D. ; Segreti, M. ; Védrine, P.
Author_Institution :
CEA/DSM/DAPNIA/SACM, Gif-sur-Yvette, France
Volume :
14
Issue :
2
fYear :
2004
fDate :
6/1/2004 12:00:00 AM
Firstpage :
357
Lastpage :
360
Abstract :
One possible application of Nb3Sn, whose superconducting properties far exceed those of NbTi, is the fabrication of short and powerful quadrupole magnets for the interaction regions of large particle accelerators. In some projects, as in the future linear collider TESLA, the quadrupole magnets are inside the detector solenoid and must operate in its background field. This situation gives singular Lorentz force distribution in the ends of the magnet. To learn about Nb3Sn technology, evaluate fabrication techniques and test the interaction with a solenoidal field, DAPNIA/SACM at CEA/Saclay has started the manufacturing of a 1-m-long, 56-mm-single-aperture quadrupole magnet model. The model relies on the same coil geometry as the LHC arc quadrupole magnets, but has no iron yoke. It will produce a nominal field gradient of 211 T/m at 11,870 A. The coils are wound from Rutherford-type cables insulated with glass fiber tape, before being heat-treated and vacuum-impregnated with epoxy resin. Laminated, collars, locked around the coil assembly by means of keys restrain the Lorentz forces. After a recall of the conceptual design, the paper will review the progress in the manufacturing and test of the main components as well as the design and delivery of the main tooling. The first coil should be wounded and reacted during the last quarter of the year 2003.
Keywords :
accelerator magnets; heat treatment; linear colliders; niobium alloys; superconducting coils; superconducting magnets; tin alloys; CEA/Saclay; DAPNIA/SACM; LHC arc quadrupole magnets; Lorentz force distribution; Nb3; Nb3Sn quadrupole magnet model; NbTi; Rutherford-type cables; TESLA Interaction Region; TESLA linear collider; TeV Superconducting Linear Accelerator; coil assembly; coil geometry; detector solenoid; epoxy resin; fabrication techniques; glass fiber tape; iron yoke; nominal field gradient; particle accelerators; solenoidal field; superconducting properties; vacuum-impregnation; Coils; Fabrication; Linear particle accelerator; Magnetic properties; Manufacturing; Niobium compounds; Superconducting magnets; Testing; Tin; Titanium compounds; $rm Nb_; rm Sn$; superconducting quadrupole magnet; wind & react;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2004.829129
Filename :
1324807
Link To Document :
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