Radiological Protection in Industries Involving NORM: A (Graded) Methodological Approach to Characterize the Exposure Situations
Abstract
:1. Introduction
2. Italian Legislative Framework
3. Material and Methods
3.1. Overview and Inventory of NORM Sites and Exposure Scenarios in Italy
3.2. The Approach Adopted to Elaborate a General Methodology for the Characterization of the Exposure Sources for Workers and Population from NORM Involving Industries
- What are the NORM matrices of radiological concern to be analysed in laboratory and the radionuclide activity concentration to be measured?
- What are the most suitable analysis methods to be used?
- Are simplified methods available to assess the exposure of workers and members of the public?
4. Results and Discussion
4.1. Inventory of Italian Industries Involving NORM
- Extraction of rare earths from monazite;
- Extraction of tin, lead and copper;
- Extraction of iron-niobium from pyrochlore;
- Niobite/tantalite processing;
- Production of thorium compounds and manufacture of thorium-containing products.
4.2. Description of General Methodology
4.2.1. Phase 1
4.2.2. Phase 2
5. Conclusions and Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Natural Radionuclides | ELs and CLs | |
---|---|---|
Radionuclides from 238U and 232Th series in secular equilibrium | all radionuclides | 1 kBq/kg |
210Pb and 210Po (when 238U and 232Th series are not in secular equilibrium) | 5 kBq/kg | |
40K | 10 kBq/kg |
Specific Situations | Radionuclides | ELs | CLs |
---|---|---|---|
Oil sludge | U-nat, 230Th, 232Th, 210Pb, 210Po | 100 kBq/kg | 100 kBq/kg |
228Ra | 10 kBq/kg | 10 kBq/kg | |
For all radionuclides of the 238U and 232Th series | 5 kBq/kg | 5 kBq/kg | |
40K | 50 kBq/kg | 50 kBq/kg | |
Disposal in landfill or reuse for road construction | 238U and 232Th series | 0.5 kBq/kg | |
210Pb and 210Po | 2.5 kBq/kg | ||
40K | 5 kBq/kg | ||
Incineration | Dose assessment for members of the public | ||
Disposal of residues or effluents with potential impact on drinking water sources | Dose assessment for members of the public |
Category | Dose Value |
---|---|
Workers | 1 mSv/year |
Members of the public | 0.3 mSv/year |
0.1 mSv/year in case of potential impact on drinking water sources |
Industrial Sector | Class of Practice or Critical Exposure Scenarios |
---|---|
Coal-fired power plants | Maintenance of boilers |
Mining of ores other than uranium ore | Extraction of granitoids, such as granites, orthogneiss, tuff, pozzolana, basalt, porphyry and lava |
Zircon and zirconium industry | Processing of zircon sands Production of refractories, ceramics and tiles Production of zirconium oxide and metallic zirconium |
Mineral processing and primary iron production | Extraction of rare earths from monazite Extraction of tin, lead and copper Processing of iron/niobium from pyrochlore ore Extraction of aluminum from bauxite Processing of iron/tantalum Use of potassium chloride as additive in metals extraction by fusion |
TiO2 pigment production | Management and maintenance of titanium dioxide production plants |
Processing of phosphate and potassium minerals | Thermal phosphorus production Phosphoric acid production Production and wholesale of phosphate and potassium fertilisers Production and wholesale of potassium chloride |
Cement production | Maintenance of clinker ovens |
Production of thorium compounds and manufacture of thorium-containing products | Production of thorium compounds and manufacture, management and conservation of thorium-containing products, in particular welding electrodes with thorium, optical components with thorium and nets for gas lamps |
Geothermal energy production | Maintenance of high or medium-enthalpy geothermal energy systems |
Oil and gas production | Oil extraction and refining, gas extraction, in particular for the presence of muds and scales in pipes and oil containers |
Industries equipped with groundwater filtration facilities | Management and maintenance of facilities |
Cutting and sandblasting processing | Plants using abrasive sands or minerals |
Industrial Sector | N. of Plants | |
---|---|---|
2014 | 2022 | |
Cement production: Integral cycle Grinding | Total: 81 | Total: 54 32 22 |
Geothermal energy production: high and medium enthalpy | 34 | 34 |
Zircon sands industry: Tiles prod Refractories prod Sanitary ware prod Ceramic glazes and dyes prod | 82 37 | 131 31 30 15 |
Coal-fired power plants | 13 | 6 |
Titanium dioxide production | 1 | 1 |
Steel production: Integral cycle Electric furnace | 2 40 | 1 37 |
Oil & gas production: Oil production plants Gas production plants Refinery | 1642 wells | 1581 wells (25 plants) 193 10 |
Aluminum production | 1 | 1 |
Processing of phosphate and potassic ores Fertilizer production | 22 |
Industrial Sector | Raw Materials | Residues | Ref. |
---|---|---|---|
Activity Conc. (Bq/g) | |||
Cement production:
| Scales 210Pb: 0.05–0.14; 210Po: 0.05–0.3 | [29] | |
Geothermal energy production:
| Tower sludge, Scales deposits, Exhausted sand, Sand blasting dust, Adsorbent, Filtering material All nuclides < 1, but some scales have 210Po and 210Pb > 1 | [29] | |
Zircon sands industry:
| Zircon sand 238U: 1830–3600 232Th: 370–520 | Tile hydrated lime 210Po: 4.7–46 Refractory Fusion furnace dust: 210Pb: 21, 210Po: 35 Grinding dust: 238U: 1.2, 210Po: 1.3 Sludge 238U: 1.7, 210Pb and 210Po: 1.2 | [30] |
Coal-fired power plants | Fly ash 238U: 0.08, 232Th: 0.08, 210Po: 0.09, 210Po: 0.08 Bottom ash 238U: 0.14, 232Th: 0.14, 210Po: 0.03, 210Po: 0.05 | [29] | |
Titanium dioxide production | Filtering clothes: 232Th series: 1.5 | ||
Steel production:
| Blast furnace dust 210Pb and 210Po: 0.5–1.6 Sintering dust 210Pb: 47.3, 210Po: 42.9 | [30,31] | |
Oil & gas production:
| Sludge 226Ra: 0.6–2 Scales 226Ra: 0.12–3 | [30] | |
Aluminum production | Red mud 238U: 0.10, 232Th: 0.12, 226Ra:0.09 | [30] | |
Processing of phosphate and potassic ores
| Phosphorite 238U: 1.8–3.6, 226Ra:1.1–1.6 | Phosphogypsum 226Ra:1.3–4.0 | [30] |
Solid Matrix | Analytical Method | Radionuclides | |
---|---|---|---|
Raw material | Raw material of natural origin | Gamma spectrometry | 40K, series of 238U and 232Th |
Raw material from industrial process | Gamma spectrometry | 40K, chain segments of 238U and 232Th | |
Residue | Dried Residue 1 (e.g., from refractory industry) | Gamma spectrometry Alpha spectrometry | 40K, chain segments of 238U, 232Th and 210Po |
Dried Residue 2 (e.g., from cement production) | Gamma spectrometry | 40K, chain segments of 238U and 232Th | |
Wet residue (e.g., oil sludge) | Gamma spectrometry | 40K, chain segments of 238U and 232Th |
Matrix | Exposure Scenarios | ||
---|---|---|---|
Workers | Public | ||
Industrial sector | Raw materials | Storage–Large quantity; transport; management | Transport |
Residues | Management (collection, loading, unloading, etc.) | Disposal (landfill, recycle, reuse, etc.); transport | |
Final products | Finishing processes; packaging; transport | - | |
Liquid effluents | - | Release of wastewater: exposure of members of the public to liquid effluents | |
Gaseous effluents | - | Release of gaseous effluents from chimneys: exposure of members of the public living near the industrial plant |
Specific Exposure Scenarios | Matrix | Exposure Pathways |
---|---|---|
Exposure to heap, Transport, etc. | Raw material of natural origin | External exposure, inhalation, radon exposure |
Raw material from industrial process | External exposure, inhalation, radon exposure | |
Management of residues (Collection, loading, unloading, etc.) Transport | Dried Residue 1 | External exposure, inhalation, radon exposure |
Dried Residue 2 | External exposure, inhalation, radon exposure | |
Wet residue (sludge) | External exposure, radon exposure | |
Finishing processes Transport | Final product | External exposure, radon exposure |
Specific Exposure Scenarios | Matrix | Exposure Pathways |
---|---|---|
Transport | Raw materials | External exposure, inhalation, radon exposure |
Release from chimney | Gaseous effluent | External exposure, inhalation, secondary ingestion * |
Release to water body or sewage system | Liquid effluent | External exposure, inhalation, secondary ingestion * |
Exposure to residue with activity conc.> CLs | Sludge, grinding waste, dust from abatement plant, etc. | External exposure, inhalation, radon exposure |
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Trevisi, R.; Ampollini, M.; Bogi, A.; Bucci, S.; Caldognetto, E.; La Verde, G.; Leonardi, F.; Luzzi, L.; Nuccetelli, C.; Peroni, I.; et al. Radiological Protection in Industries Involving NORM: A (Graded) Methodological Approach to Characterize the Exposure Situations. Atmosphere 2023, 14, 635. https://doi.org/10.3390/atmos14040635
Trevisi R, Ampollini M, Bogi A, Bucci S, Caldognetto E, La Verde G, Leonardi F, Luzzi L, Nuccetelli C, Peroni I, et al. Radiological Protection in Industries Involving NORM: A (Graded) Methodological Approach to Characterize the Exposure Situations. Atmosphere. 2023; 14(4):635. https://doi.org/10.3390/atmos14040635
Chicago/Turabian StyleTrevisi, Rosabianca, Marco Ampollini, Andrea Bogi, Silvia Bucci, Elena Caldognetto, Giuseppe La Verde, Federica Leonardi, Laura Luzzi, Cristina Nuccetelli, Ilaria Peroni, and et al. 2023. "Radiological Protection in Industries Involving NORM: A (Graded) Methodological Approach to Characterize the Exposure Situations" Atmosphere 14, no. 4: 635. https://doi.org/10.3390/atmos14040635
APA StyleTrevisi, R., Ampollini, M., Bogi, A., Bucci, S., Caldognetto, E., La Verde, G., Leonardi, F., Luzzi, L., Nuccetelli, C., Peroni, I., Picciolo, F., Pratesi, G., Trotti, F., Ugolini, R., Venoso, G., & Pugliese, M. (2023). Radiological Protection in Industries Involving NORM: A (Graded) Methodological Approach to Characterize the Exposure Situations. Atmosphere, 14(4), 635. https://doi.org/10.3390/atmos14040635