Title :
Development of wide-bore conduction-cooled superconducting magnet system for material processing applications
Author :
Wang, Qiuliang ; Yan, Luguang ; Zhao, Baozhi ; Song, Sousen ; Lei, Yuanzhong
Author_Institution :
Inst. of Electr. Eng., Chinese Acad. of Sci., Beijing, China
fDate :
6/1/2004 12:00:00 AM
Abstract :
The application of high magnetic field to material processing, so called electromagnetic processing of material (EPM) has been recognized as cutting edge technology, especially in the field of advanced material processing. It is the most effective methods to control thermal, mass and energy transfer during material solidification. A wide-bore conduction-cooled superconducting magnet with operating current of 116 A was designed, fabricated and tested for the material processing devices. The superconducting magnet has the effective warm hole of 18 cm, the maximum center field of 6 T and homogeneity of 5% in diameter of 5 cm. After the Nb3Sn coil insert installed, the magnet can provide the maximum center field of 10 T with effective warm bore of 10 cm. A second-stage GM cryocooler with the second-stage cooling power of 1 W is used to cool the superconducting magnet from room temperature to 4.2 K. In this paper, the design, fabrication, test, stress analysis and quench protection characteristics are presented.
Keywords :
magnetic variables measurement; materials preparation; superconducting magnets; 1 W; 10 T; 116 A; 6 T; FEM stress analysis; GM cryocooler; Nb3Sn; conducting-cooled superconducting magnet; cutting edge technology; electromagnetic processing of material; energy transfer; high magnetic field; mass control; material processing applications; material processing devices; material solidification; quench protection; thermal control; Conducting materials; Electromagnetic fields; Energy exchange; Magnetic fields; Magnetic materials; Materials processing; Materials testing; Superconducting magnets; Superconducting materials; Weight control; Conducting-cooled superconducting magnet; FEM stress analysis; material processing; quench protection;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2004.829673