DocumentCode :
1070439
Title :
Development of ´poly-layer´ assembly technology for pulsed magnets
Author :
Marshall, Wm Scott ; Swenson, Charles A., Jr. ; Gavrilin, Andy V. ; Rickel, Dwight G. ; Schneider-Muntau, Hans J.
Author_Institution :
National High Magnetic Field Lab., Tallahassee, FL, USA
Volume :
14
Issue :
2
fYear :
2004
fDate :
6/1/2004 12:00:00 AM
Firstpage :
1241
Lastpage :
1244
Abstract :
Historically the analysis of pulsed magnets has indicated that a coil assembly comprised by a layer-by-layer graded conductor coil is nearly optimum. Additionally the layer-to-layer winding transitions, associated with monolithic coil construction, are problematic and often the source of catastrophic failure in pulsed coils. FEA analysis of transition structures has confirmed the lessons of operational experience. Additionally the layer-to-layer winding transitions present an unacceptable risk a short circuit fault to the reinforcement structure. These attributes of monolithic coil construction have limited the fields where pulsed magnets can be operated to approximately 60 T. Several operational issues arise above this field: coil reliability degrades, and the time required to cool the magnet between shots is increased, since higher field monolithic coils require large amounts of distributed internal reinforcement to limit conductor strain. We are developing a new ´poly-layer´ coil construction to address these engineering requirements. In this construction, each layer is wound separately on a forming mandrel, and then installed onto an assembly mandrel. Spool pieces are installed at each end to support the lead exits as they transition out of the windings. Each layer is joined in series with the next in joint structures that is constrained in the radial and circumferential directions, but free to move with the coil in the axial direction. Furthermore, the coil reinforcement is used to support the lead in the transition region between the windings and the joint. The new design represents a change in our manufacturing template that is intended to allow development of higher field coils. This paper report design details and the results from prototype testing.
Keywords :
assembling; electromagnets; failure analysis; windings; FEA analysis; assembly mandrel; axial direction; catastrophic failure; circumferential directions; coil assembly; coil reinforcement; coil reliability; conductor strain; distributed internal reinforcement; engineering requirements; graded conductor coil; higher field coils; higher field monolithic coils; joint structures; layer-by-layer conductor coil; layer-to-layer winding transitions; manufacturing template; monolithic coil construction; poly-layer assembly; poly-layer coil construction; prototype testing; pulsed coils; pulsed magnets; radial directions; reinforcement structure; short circuit fault; transition region; transition structures; Assembly; Circuit faults; Coils; Conductors; Degradation; Magnetic analysis; Magnetic field induced strain; Magnets; Reliability engineering; Wounds; Leads; pulse magnet; reinforcement; windings;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2004.830542
Filename :
1325023
Link To Document :
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