Title :
Analytical Model of Thermoelectrical Behavior in Superconducting Resistive Core Cables
Author :
Calvi, M. ; Bottura, L. ; Breschi, M. ; Coccoli, M. ; Granieri, P. ; Iriart, G. ; Lecci, F. ; Siemko, A.
Author_Institution :
CERN, Geneva
fDate :
6/1/2006 12:00:00 AM
Abstract :
High field superconducting Nb3Sn accelerators magnets above 14T, for future High Energy Physic applications, call for improvements in the design of the protection system against resistive transitions. The longitudinal quench propagation velocity (vq) is one of the parameters defining the requirements of the protection. Up to now vq has been always considered as a physical parameter defined by the operating conditions (the bath temperature, cooling conditions, the magnetic field and the over all current density) and the type of superconductor and stabilizer used. It is possible to enhance the quench propagation velocity by segregating a percent of the stabilizer into the core, although keeping the total amount constant and tuning the contact resistance between the superconducting strands and the core. Analytical model and computer simulations are presented to explain the phenomenon. The consequences with respect to minimum quench energy are evidenced and the strategy to optimize the cable designed is discussed
Keywords :
accelerator magnets; contact resistance; critical current density (superconductivity); superconducting cables; superconducting magnets; thermoelectricity; Nb3Sn; bath temperature; computer simulations; contact resistance; current density; high field superconducting accelerators magnets; longitudinal quench propagation velocity; magnetic field; protection system; quench energy; resistive transitions; superconducting core; superconducting resistive core cables; superconducting strands; thermoelectrical analysis; Accelerator magnets; Analytical models; Cooling; Magnetic cores; Niobium-tin; Protection; Superconducting cables; Superconducting magnets; Temperature; Thermoelectricity; Quench propagation velocity; stability; superconducting cables;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2006.871301