DocumentCode
1085988
Title
Temperature compensation in hybrid magnets with application to the Fermilab stacker and recycler ring dipole design
Author
Schlueter, R.D. ; Marks, S. ; Loper, C. ; Halbach, K.
Author_Institution
Lawrence Berkeley Lab., CA, USA
Volume
32
Issue
4
fYear
1996
fDate
7/1/1996 12:00:00 AM
Firstpage
2203
Lastpage
2205
Abstract
Design theory of hybrid (permanent magnet plus iron) accelerator magnets with application to the proposed permanent magnet recycler and stacker rings at the Fermi National Laboratory is presented. Field stability in such devices requires that changes in the strength of the permanent magnet material with temperature be compensated. Field tuning techniques, including those employing variable capacitance between energized pole and magnet yoke and those employing variable energization of magnet pole pieces, are described. Mechanical configurations capable of achieving temperature compensation passively, including use of expanding liquids/gases and bimetallic springs are outlined. Active configurations, relying on a actuator, in addition to temperature compensation, have the additional benefit of enabling magnet tuning about a nominal operating field level
Keywords
accelerator magnets; permanent magnets; Fe; Fermilab stacker; accelerator magnets; active configurations; bimetallic springs; energized pole; field stability; field tuning techniques; hybrid magnets; magnet pole pieces; magnet yoke; mechanical configurations; permanent magnet; recycler ring dipole design; temperature compensation; variable capacitance; variable energization; Accelerator magnets; Capacitance; Gases; Iron; Laboratories; Liquids; Magnetic materials; Permanent magnets; Stability; Temperature;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.508604
Filename
508604
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