A methodology for the systematic identification of naturally occurring radioactive materials (NORM)

被引:18
作者
Michalik, Boguslaw [1 ]
Dvorzhak, Alla [2 ]
Pereira, Ruth [3 ]
Lourenco, Joana [4 ]
Haanes, Hallvard [5 ]
Di Carlo, Christian
Nuccetelli, Cristina [6 ]
Venoso, Gennaro [6 ]
Leonardi, Federica [7 ]
Trevisi, Rosabianca [7 ]
Trotti, Flavio [8 ]
Ugolini, Raffaella [8 ]
Pannecoucke, Lea [9 ]
Blanchart, Pascale [9 ]
Perez-Sanchez, Danyl [2 ]
Real, Almudena [2 ]
Escribano, Alicia [2 ]
Fevrierj, Laureline [10 ]
Kallio, Antti [11 ]
Skipperud, Lindis [12 ]
Jerome, Simon Mark [12 ]
Popic, Jelena Mrdakovic [5 ]
机构
[1] Cent Min Inst GIG, Silesian Ctr Environm Radioact, Plac Gwarkow 1, PL-40166 Katowice, Poland
[2] Res Ctr Energy Environm & Technol CIEMAT, Ave Complutense 40, Madrid 28040, Spain
[3] Univ Porto, Fac Sci, Rua Agr 747, Vila Da Conde, Portugal
[4] Univ Aveiro, Dept Biol, CESAM, Campus Univ Santiago, P-3810193 Aveiro, Portugal
[5] Norwegian Radiat & Nucl Safety Author DSA, Grini Naeringspark 13, Osteras, Norway
[6] Natl Ctr Radiat Protect & Computat Phys, Natl Inst Hlth ISS, Rome, Italy
[7] DiMEILA, Natl Inst Insurance Accid Work INAIL, Monteporzio Catone Rome, Italy
[8] Environm Protect Agcy Veneto ARPAV, Verona, Italy
[9] Inst Radiol Protect & Nucl Safety, IRSN, PSE ENV, SEDRE, F-92260 Fontenay Aux Roses, France
[10] Inst Radiol Protect & Nucl Safety, IRSN, PSE ENV, SRTE, F-13115 St Paul Les Durance, France
[11] Radiat & Nucl Safety Author STUK, Lahteentie 2, Rovaniemi 96400, Finland
[12] Norwegian Univ Life Sci NMBU, Environm Chem Sect, N-1432 As, Norway
基金
欧盟地平线“2020”;
关键词
Naturally occurring radioactive materials; (NORM); NORM inventory; Uranium; Thorium; Harmonisation; Radiation protection; RADIOLOGICAL IMPACT; NATIONWIDE SURVEY; RADIONUCLIDES; EXPOSURE; WATER; INDUSTRIES; FLOWBACK;
D O I
10.1016/j.scitotenv.2023.163324
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Naturally occurring radioactive materials (NORM) are present worldwide and under certain circumstances (e.g., human activities) may give radiation exposure to workers, local public or occasional visitors and non-human biota (NHB) of the surrounding ecosystems. This may occur during planned or existing exposure situations which, under current radiation protection standards, require identification, management, and regulatory control as for other practices associated with man-made radionuclides that may result in the exposure of people and NHB. However, knowledge gaps exist with respect to the extent of global and European NORM exposure situations and their exposure scenario characteristics, including information on the presence of other physical hazards, such as chemical and biolog-ical ones. One of the main reasons for this is the wide variety of industries, practices and situations that may utilise NORM. Additionally, the lack of a comprehensive methodology for identification of NORM exposure situations and the absence of tools to support a systematic characterisation and data collection at identified sites may also lead to a gap in knowledge.Within the EURATOM Horizon 2020 RadoNorm project, a methodology for systematic NORM exposure identification has been developed. The methodology, containing consecutive tiers, comprehensively covers situations where NORM may occur (i.e., minerals and raw materials deposits, industrial activities, industrial products and residues and their applica-tions, waste, legacies), and thus, allows detailed investigation and complete identification of situations where NORM may present a radiation protection concern in a country. Details of the tiered methodology, with practical examples on harmonised data collection using a variety of existing sources of information to establish NORM inventories, are presented in this paper. This methodology is flexible and thus applicable to a diversity of situations. It is intended to be used to make NORM inventory starting from the scratch, however it can be used also to systematise and complete existing data.
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页数:13
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