Title :
Persistent-Current Magnetization of
Strands: Influence of Applied Field Angle and Transport Current
Author :
Xu, X. ; Majoros, M. ; Sumption, M.D. ; Collings, E.W.
Author_Institution :
Ohio State Univ., Columbus, OH, USA
Abstract :
For many accelerator magnets field quality at the bore is a critical requirement for which reason it is necessary to fully characterize the persistent-current magnetization of strands of the kind under consideration for these magnets. The magnetization of a strand is generally measured in a magnetometer. However, certain effects can differentiate such measurements from the true magnetizations of strands in magnets. This report focuses on persistent-current magnetization: 1) measured by vibrating-sample magnetometer on segments of strand extracted from a section of heat treated Nb3Sn cable as functions of angle of the applied field, and 2) calculated as function of applied transport current. It is found that the magnetization of a strand in a cable increases by ~10% as the field applied to the cable is shifted from edge-on to face-on, and that the difference between the current-on and current-off magnetizations is not significant until close to the operational field of a magnet.
Keywords :
accelerator magnets; magnetisation; magnetometry; niobium alloys; persistent currents; superconducting cables; superconducting magnets; tin alloys; Nb3Sn; accelerator magnets; applied field angle; current-off magnetization; current-on magnetization; heat treated cable; strand persistent-current magnetization; transport current; vibrating-sample magnetometer; Current measurement; Magnetic field measurement; Magnetization; Magnetometers; Niobium-tin; Superconducting cables; Superconducting magnets; $hbox{Nb}_{3}hbox{Sn}$ strands; Angular dependence; Nb3Sn strands; angular dependence; magnetization and transport current; persistent-current magnetization;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2375818