Title :
Effect of Cable Edge Deformation on RRR and Magnetization of Strands Extracted From
Rutherford-Type Cables
Author :
Sumption, Mike D. ; Susner, Mike ; Collings, Edward W. ; Dietderich, Daniel R. ; Barzi, Emanuela ; Turrioni, Daniel ; Yamada, Ryuji ; Zlobin, Alexander V.
Author_Institution :
Dept. of Mater. Sci. & Eng., Ohio State Univ., Columbus, OH, USA
fDate :
6/1/2009 12:00:00 AM
Abstract :
Modern high-Jc Nb3Sn strands and cables used in high field accelerator magnet models suffer from flux jump-related instabilities at low magnetic fields, these instabilities are exacerbated by enhanced magnetization and/or reduced RRR. Such instabilities and their response to deff and RRR in individual strands have been widely reported. In this work, we look at the influence of strand deformation during cabling on RRR and magnetization for strands extracted from Nb3Sn Rutherford cables. Seven separate cable types were used for this study, a number which had been previously used in both racetrack and quadrupole magnets. In the present experiments, longitudinal variations of RRR were estimated from multiple-tap measurements along the length of strands extracted from the various cables and then reacted in a special fixture. Magnetization measurements were then performed on cable sections to examine the effect of edge deformation. The implications of these measurements for stability are discussed.
Keywords :
accelerator magnets; deformation; magnetisation; niobium compounds; superconducting cables; superconducting magnets; superconducting materials; Nb3Sn; Rutherford-type cables; cable edge deformation effect; enhanced magnetization; flux jump-related instabilities; high field accelerator magnet models; multiple-tap measurements; quadrupole magnets; racetrack magnets; strand deformation; $d_{eff}$; ${rm Nb}_{3}{rm Sn}$; RRR; rutherford cables; stability;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2009.2017901