Title :
Design of a cryocooler-cooled large bore superconducting magnet for a 30T hybrid magnet
Author :
Hasebe, T. ; Okada, S. ; Ishizuka, M. ; Tsurudome, T. ; Ito, T. ; Ookubo, H. ; Sakuraba, J. ; Watanabe, K. ; Awaji, S. ; Koyama, K. ; Nishijima, G. ; Takahashi, K.
Author_Institution :
Sumitomo Heavy Ind. Ltd., Yokosuka, Japan
fDate :
6/1/2004 12:00:00 AM
Abstract :
We are now developing a 30 T hybrid magnet utilizing a cryocooler-cooled superconducting magnet wound with highly strengthened (Nb, Ti)3Sn. Diameter of the room temperature bore of the superconducting magnet is 360 mm and it generates 11.1 T. Water cooled resistive insert magnet generates 18.9 T, thus the hybrid magnet generates a central field of 30.0 T. The (Nb, Ti)3Sn multifilamentary wires are strengthened by Cu/NbTi composite which volume ratio in conductor is about 35%. The reinforcing Cu/NbTi composite changes to CuTi intermetallic compounds during heat treatment for reaction of (Nb, Ti)3Sn phase formation. The (Nb, Ti)3Sn coil with inner diameter of 400 mm will be fabricated by wind and react method with Cu/NbTi reinforced (Nb, Ti)3Sn wires. The innermost section of (Nb, Ti)3Sn coil is wound with a wire which diameter is 1.85 mm and next second section is wound with a wire diameter of 1.8 mm. The (Nb, Ti)3Sn coil is operated at 303 A and generates 5.8 T. The NbTi coil is wound with NbTi wires of 2.0 mm and 1.6 mm diameters. The NbTi coil generates 5.3 T at an operating current of 350 A. The maximum hoop stress is under 220 MPa for (Nb, Ti)3Sn coil and 200 MPa for NbTi coil.
Keywords :
magnetic cooling; multifilamentary superconductors; superconducting magnets; 1.6 mm; 1.8 mm; 1.85 mm; 11.1 T; 18.9 T; 2.0 mm; 30 T; 30.0 T; 303 A; 360 mm; 400 mm; 5.8 T; Cu-NbTi; NbTi coil; NbTi wires; cryocooler-cooled superconducting magnet; heat treatment; high magnetic field; hybrid magnet; intermetallic compounds; multifilamentary wires; phase formation; wind and react method; Boring; Coils; Hybrid power systems; Niobium compounds; Superconducting magnets; Temperature; Tin; Titanium compounds; Wires; Wounds; Cryocooler-cooled superconducting magnet; Cu/NbTi reinforced $; _; hboxNb,hboxTi; hboxSn$ ; high magnetic field; hybrid magnet;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2004.829672