Title :
Normal zone propagation in high-current density Nb3Sn conductors for accelerator magnets
Author :
den Ouden, A. ; van Weeren, H. ; Wessel, W.A.J. ; ten Kate, H.H.J. ; Kirby, G.A. ; Siegel, N. ; Taylor, T.
Author_Institution :
Twente Univ., Enschede, Netherlands
fDate :
6/1/2004 12:00:00 AM
Abstract :
Self-absorbing quench protection schemes for accelerator magnets mainly rely on longitudinal and turn-to-turn normal zone propagation (NZP) immediately after the occurrence of a quench and subsequently on the effectiveness of protection heaters. Especially for impregnated Nb3Sn coils the protection should not only aim at limitation of the hot spot temperature and internal voltages but also at avoidance of large temperature gradients and local stress accumulation. Considering Rutherford types of cable based on present high current density Nb3Sn wires with a relatively low stabilizer content, a priori knowledge about their NZP properties is mandatory. Especially the medium and low-field properties appear to be critical for coil protection. The longitudinal NZP velocity of PIT-type Nb3Sn conductors are investigated both experimentally and numerically in nearly adiabatic conditions typical for impregnated coils. Numerical simulations are extended to extremely high current density Nb3Sn conductors and protection heater performance.
Keywords :
accelerator magnets; electrical engineering computing; electromagnetic wave propagation; numerical analysis; physics computing; superconducting cables; superconducting coils; superconducting magnets; Nb3Sn; Nb3Sn superconductor; Rutherford cable; accelerator magnets; adiabatic conditions; coil protection; high-current density Nb3Sn conductors; hot spot temperature; impregnated Nb3Sn coils; internal voltage; local stress accumulation; longitudinal normal zone propagation; protection heaters; self-absorbing quench protection schemes; stabilizer content; temperature gradients avoidance; turn-to-turn normal zone propagation; Accelerator magnets; Coils; Conductors; Current density; Internal stresses; Niobium; Protection; Temperature; Tin; Voltage; $hbox Nb_; Accelerator magnet; Rutherford cable; hbox Sn$ superconductor; normal zone propagation;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2004.829082