DocumentCode
1429942
Title
Effects of Slip Planes on Stresses in MICE Coupling Solenoid Coil Assembly
Author
Wang, L. ; Pan, H. ; Wu, H. ; Guo, X.L. ; Cheng, Y. ; Green, M.A.
Author_Institution
Inst. of Cryogenics & Supercond. Technol., Harbin Inst. of Technol., Harbin, China
Volume
20
Issue
3
fYear
2010
fDate
6/1/2010 12:00:00 AM
Firstpage
1940
Lastpage
1943
Abstract
The MICE superconducting coupling solenoid magnet is made from copper matrix Nb-Ti conductors with inner radius of 750 mm, length of 285 mm and thickness of 110.4 mm at room temperature. The coil is to be wound on a mandrel made of aluminum. The peak magnetic field on the conductor is about 7.3 T when fully charged at 210 A. High magnetic field and large size make the stress inside the coupling coil assembly relatively high during cool down and full energizing. The shear stress between coil winding and aluminum casing may cause premature quench. To avoid quench potential induced by stress, slip planes were designed for the coil assembly. In this paper, FE models with and without slip planes for it have been developed to simulate the stresses during the process including winding, cooling down and charging. The stress distribution in the coil assembly with and without slip planes was investigated. The results show that slip planes with low friction coefficients can improve the stress condition in the coil, especially reduce the shear stress largely so that improve the stability.
Keywords
finite element analysis; friction; stress analysis; superconducting coils; superconducting magnets; windings; MICE coupling solenoid coil assembly; MICE superconducting coupling solenoid magnet; Nb-Ti conductors; aluminum casing; coil winding; copper matrix; current 210 A; finite element model; low friction coefficients; muon ionization cooling experiment; peak magnetic field; quench potential; radius 750 mm; shear stress; size 110.4 mm; size 285 mm; slip plane effects; stress distribution; temperature 293 K to 298 K; Friction coefficient; MICE superconducting coupling magnet; slip planes; stress analysis;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2010.2040915
Filename
5422824
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