DocumentCode :
976157
Title :
Development of a Current Fit Function for NbTi to be Used for Calculation of Persistent Current Induced Field Errors in the LHC Main Dipoles
Author :
Schwerg, Nikolai ; Vollinger, Christine
Author_Institution :
CERN, Geneva
Volume :
16
Issue :
2
fYear :
2006
fDate :
6/1/2006 12:00:00 AM
Firstpage :
1828
Lastpage :
1831
Abstract :
A new fit function for the critical current density of superconducting NbTi cables for the LHC main dipoles is presented. Existing fit functions usually show a good matching of the very low field range, but produce a current density which is significantly too small for the intermediate and high field range. Consequently the multipole range measured at cold is only partially reproduced and loops from current cycling do not match. The presented function is used as input for the field quality calculation of a complete magnet cross-section including arbitrary current cycling and all hysteresis effects. This way allows to trace a so-called finger-print of the cable combination used in the LHC main bending magnets. The finger-print pattern is a consequence of the differences of the measured superconductor magnetization of cables from different manufacturers. The simulation results have been compared with measurements at cold obtained from LHC main dipoles and a very good agreement for low and intermediate field values could be observed
Keywords :
accelerator magnets; critical current density (superconductivity); ion accelerators; proton accelerators; storage rings; superconducting magnets; synchrotrons; LHC main bending magnets; LHC main dipoles; accelerator magnets; arbitrary current cycling; critical current density; critical surface; current fit function; field quality calculation; finger-print pattern; hysteresis effects; magnet cross-section; persistent current induced field errors; superconducting NbTi cables; superconductor magnetization; Critical current density; Current density; Current measurement; Large Hadron Collider; Magnetic field measurement; Niobium compounds; Persistent currents; Superconducting cables; Superconducting magnets; Titanium compounds; Accelerator magnets; critical current; critical surface; superconductor magnetization;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2005.864295
Filename :
1643219
Link To Document :
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