DocumentCode
2083161
Title
Computations of superconducting magnet´s quench processes
Author
Janowski, T. ; Surdacki, P.
Author_Institution
Lublin Tech. Univ., Poland
fYear
1994
fDate
12-14 Apr 1994
Firstpage
219
Lastpage
222
Abstract
Superconducting magnets applied in magnetic separators produce large magnetic fields. They can work nominally at elevated direct currents in steady states. A superconducting winding has zero electrical resistance at a temperature of 4.2 K. Sometimes, because of local disturbances, e.g. local mechanical or thermal stresses or rise in magnetic field, the winding becomes a resistive one and energy dissipation raises its temperature. A quench (superconductivity loss) in the coil can lead to an immense magnetic field energy discharge. The averaged critical parameters of the cryomagnet winding have been applied so far to analyze and design cryomagnets. The in-time variability of these parameters has not been usually considered. A new two-dimensional numerical model of the resistive zone propagation in the superconducting winding is developed. In the quench analysis not only the circuit electrical parameters such as resistance and inductance, but also the instantaneous local superconductor critical parameters, which are decisive for a transition of any winding point to a resistive state, are taken into account
Keywords
magnetic separation; numerical analysis; quenching (thermal); superconducting magnets; 2D numerical model; 4.2 K; coil; cryomagnet winding; electrical parameters; energy discharge; energy dissipation; inductance; local mechanical stress; local thermal stress; magnetic fields; magnetic separators; quench processes; resistance; resistive zone propagation; superconducting magnet; superconducting winding; superconductivity loss; superconductor critical parameters;
fLanguage
English
Publisher
iet
Conference_Titel
Computation in Electromagnetics, 1994. Second International Conference on
Conference_Location
London
Print_ISBN
0-85296-609-1
Type
conf
DOI
10.1049/cp:19940056
Filename
324044
Link To Document