Title :
HTS Dipole Insert Developments
Author :
Rey, Jean-Michel ; Devaux, Melanie ; Bertinelli, F. ; Chaud, X. ; Debray, Francois ; Durante, M. ; Favre, G. ; Fazilleau, Ph ; Lecrevisse, Thibault ; Mayri, C. ; Pes, Chhon ; Pottier, F. ; Sorbi, M. ; Stenvall, A. ; Tixador, P. ; Tudela, J. ; Tardy, T. ;
Author_Institution :
CEA-DSM-IRFU-SACM, Gif-sur-Yvette, France
Abstract :
Future accelerator magnets will need to reach a magnetic field in the 20 T range. Reaching such a magnetic field is a challenge only reachable using high temperature superconductor (HTS) material. The high current densities and stress levels needed to satisfy the design criterion of such magnets make YBaCuO superconductor the most appropriate candidate especially when produced using the IBAD route. The HFM EUCARD program is aimed at designing and manufacturing a dipole insert made of HTS material generating 6 T inside a Nb3Sn dipole of 13 T at 4.2 K. In the HTS insert, engineering current densities higher than 250 MA/m2 under 19 T are required to reach the performances. The stress level is consequently very high. The insert protection is also a critical issue as HTS shows low quench propagation velocity. The coupling with the Nb3Sn dipole makes the problem even more difficult. The magnetic and mechanical designs of the HTS insert will be presented as well as the technological developments underway to realize this compact dipole insert.
Keywords :
accelerator magnets; barium compounds; critical current density (superconductivity); high-temperature superconductors; yttrium compounds; HFM EUCARD program; HTS dipole insert developments; HTS insert; HTS material; IBAD route; Nb3Sn; YBCO; YBaCuO superconductor; accelerator magnets; compact dipole insert; design criterion; engineering current density; high current density; high temperature superconductor material; insert protection; low quench propagation velocity; magnetic design; magnetic field; mechanical design; stress levels; technological developments; temperature 4.2 K; Coils; Conductors; High temperature superconductors; Iron; Magnetomechanical effects; Stress; Superconducting magnets; High field magnet; YBaCuO; high temperature superconductor;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2237931