Pre-discard estimation of radioactivated materials in positron emission tomography cyclotron systems and concrete walls of a cyclotron vault.

germanium detector radiation control radioactivation radioactive waste simulation

Journal

Medical physics
ISSN: 2473-4209
Titre abrégé: Med Phys
Pays: United States
ID NLM: 0425746

Informations de publication

Date de publication:
May 2019
Historique:
received: 06 11 2018
revised: 20 02 2019
accepted: 07 03 2019
pubmed: 15 3 2019
medline: 3 9 2019
entrez: 15 3 2019
Statut: ppublish

Résumé

The concrete vault, cyclotron body, and peripheral equipment in a cyclotron room become radioactivated by neutrons generated by operating an unshielded cyclotron. Radionuclides and the amounts of radioactivated materials must be identified before discarding a cyclotron system. The present study aimed to reduce the amounts of concrete from cyclotron vaults, as well as cyclotron components and peripheral equipment, that will be disposed of as radioactivated waste by clarifying the nature and quantity of radioactivated materials remaining in facilities after cyclotron operations have ceased. Cylindrical concrete cores were bored into all four walls, ceiling, and floor of a room where a Cypris 370 cyclotron had been operated for 22.8 yr and then cooled for 40 months. The accelerated particles comprised protons and deuterons with constant energy of 18 and 10 MeV, respectively. The types and amounts of radionuclides in these cores, in 38 components of the cyclotron including the yoke, and in 13 pieces of equipment in the room, were determined by γ-ray spectrometry. Concentrations of radioactivity were also calculated using an updated version of Particle and Heavy Ion Transport System and DCHAIN-SP. Amounts of materials with both measured and calculated total radioactivity concentration (ΣD) of <0.1 Bq/g were identified as being nonradioactivated. The major radionuclides in the concrete were The estimated amount of radioactivated waste in the concrete was about 70,000 kg (12.5% of the total concrete). Most components of the cyclotron except for the 33% volume of the yoke (20% of the cyclotron body), as well as most peripheral equipment in the room, were radioactivated. Part-by-part assessments of radioactive materials using measurements and calculations could distinguish nonradioactive from radioactive materials before they are discarded.

Identifiants

pubmed: 30870578
doi: 10.1002/mp.13492
doi:

Substances chimiques

Cobalt Radioisotopes 0
Cobalt-60 5C8182XDPZ

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2457-2467

Informations de copyright

© 2019 American Association of Physicists in Medicine.

Auteurs

Kei Wagatsuma (K)

Research Team for Neuroimaging Tokyo, Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.

Kiichi Ishiwata (K)

Research Team for Neuroimaging Tokyo, Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.
Institute of Cyclotron and Drug Discovery Research, Southern TOHOKU Research Institute for Neuroscience, 7-115, Yatsuyamada, Koriyama, 963-8052, Japan.
Department of Biofunctional Imaging, Fukushima Medical University, 1, Hikarigaoka, Fukushima, 960-1295, Japan.

Fumiyoshi Nobuhara (F)

Department of Engineering, Tokyo Nuclear Services Co. LTD, 1-3-5, Taito, Taito-ku, Tokyo, 110-0016, Japan.

Iwane Koumura (I)

Industrial Equipment Division, Sumitomo Heavy Industries, Ltd., ThinkPark Tower, 1-1, Osaki 2-chome, Shinagawa-ku, Tokyo, 141-6025, Japan.

Masayuki Kunugi (M)

Radioisotope Center, Tokyo Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.

Keiichi Oda (K)

Research Team for Neuroimaging Tokyo, Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.
Faculty of Health Science, Hokkaido University of Science, 7-Jo 15-4-1, Maeda, Teine-ku, Sapporo, 006-8585, Japan.

Kenta Miwa (K)

School of Health Science, International University of Health and Welfare, 2600-1, Kitakanemaru, Ohtawara, 324-8501, Japan.

Jun Toyohara (J)

Research Team for Neuroimaging Tokyo, Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.

Kenji Ishii (K)

Research Team for Neuroimaging Tokyo, Metropolitan Institute of Gerontology, 35-2, Sakae-cho, Itabashi-ku, Tokyo, 173-0015, Japan.

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Classifications MeSH