DocumentCode
1547744
Title
Magnetization measurements on LHC superconducting strands
Author
Le Naour, S. ; Oberli, L. ; Wolf, R. ; Puzniak, R. ; Szewczyk, A. ; Wisniewski, A. ; Fikis, H. ; Foitl, M. ; Kirchmayr, H.
Author_Institution
CERN, Geneva, Switzerland
Volume
9
Issue
2
fYear
1999
fDate
6/1/1999 12:00:00 AM
Firstpage
1763
Lastpage
1766
Abstract
When using superconducting magnets in particle accelerators like the LHC, persistent currents in the superconductor often determine the field quality at injection, where the magnetic field is low. This paper describes magnetization measurements made on LHC cable strands at the Technical University of Vienna and the Institute of Physics of the Polish Academy of Sciences in collaboration with CERN. Measurements were performed at T=2 K and T=4.2 K on more than 50 strands of 7 different manufacturers with NbTi filament diameter between 5 and 7 micrometer. Two different measurement set-ups were used: vibrating sample magnetometer, with a sample length of about 8 mm, and an integrating coil magnetometer, with sample length of about 1 m. The two methods were compared by measuring the same sample. Low field evidence of proximity effect is discussed. Statistics like ratio of the width of the magnetization loop at 4.2 K and 2 K, and the initial slope dM/dB after cooldown are presented. Decrease of the magnetization with time, of the order of 2% per hour, was observed in some samples.
Keywords
accelerator magnets; magnetic hysteresis; magnetisation; multifilamentary superconductors; niobium alloys; proximity effect (superconductivity); superconducting magnets; titanium alloys; type II superconductors; 1 m; 2 K; 4.2 K; 5 to 7 mum; 8 mm; LHC superconducting strands; NbTi; NbTi filament diameter; cooldown; field quality; magnetization; magnetization loop; persistent currents; proximity effect; Large Hadron Collider; Linear particle accelerator; Magnetic field measurement; Magnetization; Magnetometers; Online Communities/Technical Collaboration; Persistent currents; Physics; Superconducting cables; Superconducting magnets;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.784796
Filename
784796
Link To Document