Tritium and helium release from beryllium pebbles neutron-irradiated up to 230 appm tritium and 3000 appm helium
Vladimir P. Chakin, R. Rolli, Pavel V. Vladimirov, Anton Möslang
Abstract
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Vladimir P. Chakin, R. Rolli, Pavel V. Vladimirov, Anton Möslang
Abstract
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Study of tritium and helium release from beryllium pebbles with diameters of 0.5 and 1 mm after high-dose neutron irradiation at temperatures of 686–968 K was performed. The release rate always has a single peak, and the peak temperatures at heating rates of 0.017 K/s and 0.117 K/s lie in the range of 1100–1350 K for both tritium and helium release. The total tritium release from 1 mm pebbles decreases considerably by increasing the irradiation temperature. The total tritium release from 0.5 mm pebbles is less than that from 1 mm pebbles and remains constant regardless of the irradiation temperature. At high irradiation temperatures, open channels are formed which contribute to the enhanced tritium release.
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Study of tritium and helium release from beryllium pebbles with diameters of 0.5 and 1 mm after high-dose neutron irradiation at temperatures of 686–968 K was performed. The release rate always has a single peak, and the peak temperatures at heating rates of 0.017 K/s and 0.117 K/s lie in the range of 1100–1350 K for both tritium and helium release. The total tritium release from 1 mm pebbles decreases considerably by increasing the irradiation temperature. The total tritium release from 0.5 mm pebbles is less than that from 1 mm pebbles and remains constant regardless of the irradiation temperature. At high irradiation temperatures, open channels are formed which contribute to the enhanced tritium release.
Key concepts: Tritium, Beryllium, Helium, Irradiation, Radiochemistry, Materials science, Neutron, Neutron irradiation