Title :
Magnetic and Mechanical Design of a 130 mm Aperture Nb3Sn Dipole Magnet
Author :
Félice, H. ; Mailfert, A. ; Védrine, P.
Author_Institution :
CEA Saclay, Gif-sur-Yvette
fDate :
6/1/2007 12:00:00 AM
Abstract :
For the next generation of dipoles for accelerators, two main challenges come into play. In one hand, high dipolar fields in the range of 13 to 15 T are targeted. In the other hand, large apertures (above 80 mm) are required in the interaction regions. These two requirements lead to two issues. First, a new superconductor has to replace the NbTi as its limits have been reached around 10 T with the LHC. The superconducting material liable to be its successor is the Nb3Sn. However, it is a very mechanical stress sensitive material. Up to now, a mechanical stress of 150 MPa is supposed to degrade its critical properties. Second, large aperture dipole can not be considered with the well-known cosine theta design. Indeed, above 88 mm, azimuthal Lorentz forces in this magnetic configuration produces mechanical stresses on the coil mid- plane higher than the acceptable limit. In this paper, an alternative coil arrangement based on intersecting ellipses and limiting the mechanical stresses is proposed for a 130 mm aperture dipole. The first part of this paper is dedicated to the magnetic study of this magnet. We can underline the fact that the field quality required in particle accelerators can be reached with a bore field of about 13 T. The second part deals with the mechanical structure of the magnet which is necessary to withstand the Lorentz forces involved and to apply pre-stress.
Keywords :
accelerator magnets; niobium alloys; particle accelerators; superconducting magnets; tin alloys; Nb3Sn; azimuthal Lorentz forces; critical properties; dipole magnet; mechanical stresses; mechanical structure; particle accelerators; size 130 mm; superconducting material; Apertures; Coils; Large Hadron Collider; Magnetic materials; Niobium compounds; Stress; Superconducting magnets; Superconducting materials; Tin; Titanium compounds; ${hbox{Nb}}_{3}{hbox{Sn}}$; Dipole magnet; magnetic design; mechanical design;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2007.898344