Title :
Indirectly Cooled Radiation-Resistant Magnets for Hadron Target Station at J-PARC
Author :
Takahashi, H. ; Agari, K. ; Hirose, E. ; Ieiri, M. ; Iio, M. ; Katoh, Y. ; Kiyomichi, A. ; Minakawa, M. ; Muto, R. ; Naruki, M. ; Noumi, H. ; Sato, Y. ; Sawada, S. ; Shirakabe, Y. ; Suzuki, Y. ; Takasaki, M. ; Tanaka, K.H. ; Toyoda, A. ; Watanabe, H. ; Ya
Author_Institution :
Hadron Beam Line Group, Inst. of Particle & Nucl. Studies (IPNS), Tsukuba, Japan
fDate :
6/1/2010 12:00:00 AM
Abstract :
The target station in the hadron experimental facility at J-PARC consists of a production target and a huge vacuum chamber in which several secondary-beam-line magnets can work. This vacuum chamber system aims to remove the vacuum beam pipe from the magnet gap, because the cooling of the beam pipe is the most serious problem in the high intensity beam facility. We have developed indirectly cooled radiation-resistant magnets for the hadron target station. Their coils are made of solid-conductor type mineral-insulation cables and stainless-steel water pipes. They have the great advantages that electric circuits can be completely independent of water pass. The mechanical strength and the insulation performance of the coil are significantly improved also because the insulation water pipes can be avoided from the water pass. A C-type sector dipole and a figure-8-type quadrupole magnet have been fabricated by using indirectly cooled radiation-resistant magnet technology, and installed in the vacuum chamber. We have succeeded to operate them in vacuum stably with the current of DC 1000 A by improving the end structure of the MIC coils and increasing their emissivity. These magnets have been used for the real beam operation without any serious problems.
Keywords :
accelerator magnets; linear accelerators; proton accelerators; superconducting cables; superconducting coils; superconducting magnets; C-type sector dipole; J-PARC hadron experimental facility; J-PARC hadron target station; MIC coil end structure; beam pipe cooling; coil insulation performance; coil mechanical strength; current 1000 A; indirectly cooled radiation resistant magnets; magnet gap; mineral insulation; production target; quadrupole magnet; secondary beam line magnets; solid conductor type cables; stainless steel water pipes; vacuum beam pipe; vacuum chamber system; High intensity accelerator; high intensity beam lines; radiation resistant magnet;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2009.2038930