DocumentCode
974787
Title
Magnet Operation in Vacuum for High Radiation Environment Near Production Target
Author
Takahashi, H. ; Agari, K. ; Hirose, E. ; Ieiri, M. ; Katoh, Y. ; Minakawa, M. ; Noumi, H. ; Sato, Y. ; Suzuki, Y. ; Takasaki, M. ; Tanaka, K.H. ; Toyoda, A. ; Watanabe, H. ; Yamada, Y. ; Yamanoi, Y. ; Saijo, M. ; Saitoh, Y. ; Katoh, K. ; Yahata, K.
Author_Institution
Beam Channel Group, Tsukuba
Volume
16
Issue
2
fYear
2006
fDate
6/1/2006 12:00:00 AM
Firstpage
1346
Lastpage
1349
Abstract
In a high-intensity proton beam facility, beam line elements downstream of a production target are exposed to a huge amount of radiation and heat. A water-cooled beam collimator must be located between the target and the magnets, and the iron yokes of the magnets also have to be cooled by water. Moreover, beam pipes are closer to the beam than the magnet poles and more difficult to cool sufficiently without tritium production. Therefore, the magnets are placed in a large vacuum chamber, instead of using vacuum pipes located within the pole gaps. In order to reduce the residual radiation dose during maintenance, the chamber lid and feedthroughs are 4 meter above the beam line, and radiation-shielding blocks are also stacked in the chamber. We have tested magnet operation in vacuum using a dipole magnet with mineral-insulation-cable (MIC) coils and a nickel-coated yoke. A magnet with 2500-A-class hollow-conductor MIC coils has worked successfully with the current of DC 3000 A. The stability of operation in vacuum was confirmed by measuring the temperature with thermocouples and the magnetic field with a NMR probe. We have also succeeded in operating a 1000-A-class solid-conductor MIC coil in vacuum
Keywords
accelerator magnets; dosimetry; proton accelerators; shielding; superconducting magnets; 1000-A-class solid-conductor MIC coil; 2500-A-class hollow-conductor mineral-insulation-cable coils; NMR probe; beam line elements; beam pipes; chamber lid; dipole magnet; high intensity accelerator; high radiation environment; high-intensity proton beam facility; iron yokes; magnet operation; magnet poles; magnetic field; nickel-coated yoke; production target; proton accelerator; radiation resistant magnet; radiation-shielding blocks; thermocouples; vacuum chamber; water-cooled beam collimator; Coils; Collimators; Current measurement; Iron; Magnetic field measurement; Microwave integrated circuits; Particle beams; Production; Testing; Thermal stability; High intensity accelerator; high intensity beam lines; radiation resistant magnet;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2005.864315
Filename
1643101
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