Development of Indirect-Cooling Radiation-Resistant Magnets

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. Beam pipes are closer to the beam than the magnet poles and more difficult to cool sufficiently without tritium production. Therefore, the magnets are pl...

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Veröffentlicht in:IEEE transactions on applied superconductivity 2008-06, Vol.18 (2), p.322-325
Hauptverfasser: Takahashi, H., Agari, K., Hirose, E., Ieiri, M., Iio, M., Katoh, Y., Minakawa, M., Muto, R., Naruki, M., Noumi, H., Sato, Y., Sawada, S., Suzuki, Y., Takasaki, M., Tanaka, K.H., Toyoda, A., Watanabe, H., Yamanoi, Y., Saijo, M., Saitoh, Y., Katoh, K., Yahata, K.
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Sprache:eng
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Zusammenfassung: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. 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. We have adopted indirect-cooling mineral-insulation-cable (MIC) coils for these magnets. They have a great advantage that the mechanical strength and the insulation performance can be significantly improved by avoiding the use of ceramic insulation pipes, because electric circuits are completely separated from water passages. We have made coils using 1000-A-class solid-conductor MICs and stainless-steel pipes, and tested magnet operation in vacuum. By improving the structure of end parts of MICs and increasing their emissivity, we have successfully fed the current of DC 1000 A to the solid-conductor MIC coils in vacuum.
ISSN:1051-8223
1558-2515
DOI:10.1109/TASC.2008.921261