DocumentCode
39715
Title
Canted–Cosine–Theta Magnet (CCT)—A Concept for High Field Accelerator Magnets
Author
Caspi, S. ; Borgnolutti, F. ; Brouwer, L. ; Cheng, Daizhan ; Dietderich, D.R. ; Felice, H. ; Godeke, A. ; Hafalia, R. ; Martchevskii, M. ; Prestemon, S. ; Rochepault, E. ; Swenson, Charles ; Wang, Xiongfei
Author_Institution
Lawrence Berkeley Nat. Lab., Berkeley, CA, USA
Volume
24
Issue
3
fYear
2014
fDate
Jun-14
Firstpage
1
Lastpage
4
Abstract
Canted-Cosine-Theta (CCT) magnet is an accelerator magnet that superposes fields of nested and tilted solenoids that are oppositely canted. The current distribution of any canted layer generates a pure harmonic field as well as a solenoid field that can be cancelled with a similar but oppositely canted layer. The concept places windings within mandrel´s ribs and spars that simultaneously intercept and guide Lorentz forces of each turn to prevent stress accumulation. With respect to other designs, the need for pre-stress in this concept is reduced by an order of magnitude making it highly compatible with the use of strain sensitive superconductors such as Nb3Sn or HTS. Intercepting large Lorentz forces is of particular interest in magnets with large bores and high field accelerator magnets like the one foreseen in the future high energy upgrade of the LHC. This paper describes the CCT concept and reports on the construction of CCT1 a “proof of principle” dipole.
Keywords
accelerator magnets; high-temperature superconductors; niobium alloys; solenoids; superconducting magnets; tin alloys; windings; HTS; LHC energy upgrade; Lorentz forces; Nb3Sn; canted layer; canted-cosine-theta magnet; current distribution; high field accelerator magnets; mandrel ribs; mandrel spars; nested solenoid; proof of principle dipole; pure harmonic field; solenoid field; strain sensitive superconductors; stress accumulation; tilted solenoid; windings; Coils; Conductors; Lamination; Magnetomechanical effects; Stress; Superconducting magnets; Windings; Accelerator magnets; CCT; Canted–Cosine–Theta magnet; high field; superconducting dipole;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2013.2284722
Filename
6621012
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