DocumentCode
1104932
Title
Computer simulation and experimental study of quench in superconducting epoxy-impregnated multi-layer coil
Author
Gavrilin, Andrew V. ; Konyukhov, Alexis A. ; Malginov, Vladimir A.
Author_Institution
Kurchatov (I.V.) Inst. of Atomic Energy, Moscow, Russia
Volume
32
Issue
4
fYear
1996
fDate
7/1/1996 12:00:00 AM
Firstpage
2990
Lastpage
2993
Abstract
The quench behaviour of a single superconducting epoxy-impregnated coil is analyzed in full by means of a computer code developed, in comparison with detailed experiment in which time-dependent temperature of composite wire (cable) at different points of the winding, current decay, electrical voltages across turns, normal zone front velocities in all directions are measured. The 3D transient heat conduction equation with a source term reduces to the set of 1D transient non-linear differential-integral-difference heat balance equations governing dynamically interdependent processes of heat propagation along helix-shaped wire within the winding layers and of heat transfer (in radial and axial directions) through inter-turn insulation of finite thickness. The heat balance equations coupled with the circuit equation for the transport current are solved numerically by the finite difference method. The effect of the helical-discrete structure of the winding formed by helix-shaped metallic wire, the turns and layers of which are separated by weakly conducting insulating material, on the winding temperature profile and the normal zone front velocity is demonstrated
Keywords
composite superconductors; digital simulation; electrical engineering computing; finite difference methods; heat conduction; quenching (thermal); superconducting coils; superconducting device testing; superconducting magnets; temperature distribution; 1D transient nonlinear differential-integral-difference heat balance equations; 3D transient heat conduction equation; composite wire; computer simulation; finite difference method; heat propagation; helical-discrete structure; helix-shaped wire; inter-turn insulation; normal zone front velocities; quench behaviour; superconducting epoxy-impregnated multi-layer coil; time-dependent temperature; weakly conducting insulating material; winding layers; winding temperature profile; Cable insulation; Computer simulation; Difference equations; Differential equations; Heat transfer; Nonlinear equations; Superconducting cables; Superconducting coils; Temperature; Wire;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.511504
Filename
511504
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