DocumentCode :
1760063
Title :
Quench Analysis of a Superconducting Magnet for RISP 28 GHz ECR Ion Source
Author :
Seunghyun Song ; Tae Kuk Ko ; Sukjin Choi ; In Seok Hong ; Hyoungku Kang ; Min Cheol Ahn
Author_Institution :
Sch. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
Volume :
25
Issue :
3
fYear :
2015
fDate :
42156
Firstpage :
1
Lastpage :
4
Abstract :
This paper presents quench analysis of a superconducting magnet system for 28 GHz electron cyclotron resonance (ECR) ion source. The magnet system consists of a hexapole coil and four solenoid coils located outside of the hexapole one. All coils were wound with NbTi wire and impregnated by epoxy. To analyze the characteristic of superconducting coil when the quench occurs, a numerical code was developed. The analysis procedures are as follows. First, normal zone propagation (NZP) velocity which is as a function of magnetic field was calculated. Second, a fraction of the winding volume was obtained by transient analysis, considering longitudinal and transverse NZP velocities. Third, a generated resistance and temperature rising over time were simulated. Lastly, current trace of the coil was calculated. The current trace calculated by simulation well agrees with the test result. Also the result of hot-spot temperature is reasonable. Since simulated hot-spot temperature and experimental result are 60.32 K and 63 K when the operating current is 169 A. The normal zone resistances are also identical for 1.13 s which is the convergence time of simulation. The final resistances are about 10.2 Ω and 11.23 Ω. Therefore it is expected that the analysis code can be used to estimate the characteristic of superconducting magnet when the quench occurs.
Keywords :
cyclotron resonance; ion sources; niobium alloys; superconducting coils; superconducting magnets; titanium alloys; type II superconductors; ECR ion source; NbTi; NbTi wire; RISP 28 GHz ECR ion source; current 169 A; electron cyclotron resonance ion source; frequency 28 GHz; hexapole coil; longitudinal NZP velocity; magnetic field function; normal zone propagation velocity; quench analysis; simulated hot-spot temperature; solenoid coils; superconducting coil; superconducting magnet system; temperature 60.32 K; temperature 63 K; transient analysis; transverse NZP velocity; Ion sources; Magnetic fields; Resistance; Simulation; Solenoids; Superconducting magnets; Superconducting transition temperature; ECR ion source; NZP velocity; normal zone propagation (NZP) velocity; quench analysis; superconducting magnet;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2014.2375373
Filename :
6987240
Link To Document :
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