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http://dx.doi.org/10.14407/jrp.2014.39.1.007

Characterization of Particulates Containing Naturally Occurring Radioactive Materials in Phosphate Processing Facility  

Lim, HaYan (Kyung Hee University)
Choi, Won Chul (Korea Institute of Nuclear Safety)
Kim, Kwang Pyo (Kyung Hee University)
Publication Information
Journal of Radiation Protection and Research / v.39, no.1, 2014 , pp. 7-13 More about this Journal
Abstract
Phosphate rock, phosphogypsum, and products in phosphate processing facility contain naturally occurring radioactive materials (NORM). Therefore, they may give rise to enhanced radiation dose to workers due to inhalation of airborne particulates. Internal dose due to particle inhalation varies depending on particle properties. The objective of the present study was to characterize particle properties at the largest phosphate processing facility in Korea. A cascade impactor was employed to sample airborne particulates at various processing areas in the plant. The collected samples were used for characterization of particle size distribution, particle concentration in the air, and shape analysis. Aerodynamic diameters of airborne particulates ranged 0.03-100 ${\mu}m$ with the highest concentration at the particle size range of 4.7-5.8 ${\mu}m$ (geometric mean = 5.22 ${\mu}m$) or 5.8-9.0 ${\mu}m$ (geometric mean = 7.22 ${\mu}m$). Particle concentrations in the air varied widely by sampling area up to more than two orders of magnitude. The large variation resulted from the variability of mechanical operations and building ventilations. The airborne particulates appeared as spheroids or rough spherical fragments across all sampling areas and sampled size intervals. Average mass densities of phosphate rocks, phosphogypsums, and fertilizers were 3.1-3.4, 2.1-2.6, and 1.7 $gcm^{-3}$, respectively. Radioactivity concentration of uranium series in phosphate rocks varied with country of origin, ranging 94-866 $Bqkg^{-1}$. Among the uranium series, uranium was mostly concentrated on products, including phosphoric acid or fertilizers whereas radium was concentrated on byproducts or phosphogypsum. No significant radioactivity of $^{226}Ra$ and $^{228}Ra$ were found in fertilizer. However, $^{40}K$ concentration in fertilizer was up to 5,000 Bq $g^{-1}$. The database established in this study can be used for the accurate risk assessment of workers due to inhalation of airborne particles containing NORM. In addition, the findings can be used as a basic data for development of safety standard and guide and for practical radiation safety management at the facility.
Keywords
Natural Radiation Safety Management Act; Naturally Occurring Radioactive Material (NORM); Phosphate processing facility; Inhalation dose; Particle property;
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1 생활주변방사선 안전관리법, [시행 2012. 7.26] [법률 제10908호, 2011. 7.25, 제정]
2 Kim KP, Wu CY, Birky BK, Bolch WE. TENORM aerosols in the Florida Phosphate Industry - assessment of lung fluid solubility and annual effective dose to workers. Radiat. Prot. Dosim. 2007;123(1):41-55.   DOI   ScienceOn
3 Kim KP, Wu CY, Birky BK, Bolch WE. Influence of particle size distribution on inhalation doses to workers in the Florida Phosphate Industry. Health Phys. 2006;91(1):58-67.   DOI   ScienceOn
4 Dorrian MD, Bailey MR. Particle size distributions of radioactive aerosols measured in work places. Radiat. Prot. Dosim. 1995;60(2):119-133.   DOI
5 Mercer T. Aerosol technology in hazard evaluation. New York and London; Academic Press. 1973.
6 Hinds W. Aerosol Technology: Properties, Behavior, and Measurement of Airborne Particles. New York; John Wiley & Sons, Inc,. 1998.
7 Birky B, Tolaymat T, Warren B, Ammons R, McNally T, Nall W. Evaluation of exposure to Technologically Enhanced Naturally Occurring Radioactive Materials (TENORM) in the phosphate industry. Publication No. 05-046-155. FL: Florida Institute of Phosphate Research. 1998.
8 Marple V. History of impactors-The first 110 years, Aerosol Sci. Technol. 2004;38:247-292.   DOI   ScienceOn
9 Pegnam R, Pilat M. Airborne particulate emissions form a chromic-acid anodizing process tank, J. Air. Waste Manage Assoc. 1992;42(3):303-308.   DOI
10 Pilat M, Steig T. Size distribution of particulateemissions from a pressurized fluidized-bed coal combustion cacility, Atmos. Environ. 1983;17(12): 2429-2433.   DOI
11 Guimond R. The Radiological Aspects of Fertilizer Utilization. U.S. Nuclear Regulatory Agency. Washington DC; NUREG/CP-0001. 1978:380-393.
12 National Council on Radiation Protection. Radiation Exposure of the U.S. Population from Consumer Products and Miscellaneous Sources. NCRP Report No. 95. Bethesda, MD. 1987.
13 Owen R, Hyder L. Technologically Enhanced Naturally Occurring Radioactivity: An Overview. ORNL/CF-80/265. Oak Ridge, TN. 1980.
14 Roessler CE, Smith ZA, Bolch WE, Prince RJ. Uranium and radium-226 in Florida phosphate materials, Health Phys. 1979;37(3):269-277.   DOI   ScienceOn
15 Scholten LS. Natural radioactivity in phosphate fetilizers. Fertilizer Research 43. 1996;103-107.   DOI
16 International Atomic Energy Agency. Assessing the need for radiation protection measures in work involving minerals and raw materials. IAEA Technical Report Series No 49. Vienna, Austria. 2006.
17 United Nations Scientific Committee on the Effects of Atomic Radiation. Sources and effects of ionizing radiation. UNSCEAR 2000. United Nations, Austria. 2000.
18 Kim KP, Wu CY, Birky BK, Nall W, Bolch WE. Characterization of radioactive aerosols in Florida phosphate processing facilities. Aerosol Sci. Tech. 2006;40(6): 410-421   DOI   ScienceOn
19 International Commission on Radiological Protection. Human respiratory tract model for radiological protection. ICRP Publication 66. Oxford; Pergamon Press. 1994.