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국내 먹는샘물 원수 중 바륨(Ba)의 수질 특성에 관한 연구

The Study on the Water Quality Characteristics of Barium in the Raw Water of Domestic Natural Mineral Water

  • 이이내 (국립환경과학원 상하수도연구과) ;
  • 안경희 (국립환경과학원 상하수도연구과) ;
  • 양미희 (국립환경과학원 상하수도연구과) ;
  • 최인철 (국립환경과학원 상하수도연구과) ;
  • 정현미 (국립환경과학원 상하수도연구과) ;
  • 이원석 (국립환경과학원 상하수도연구과) ;
  • 박주현 (국립환경과학원 상하수도연구과)
  • Lee, Leenae (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Ahn, Kyunghee (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Yang, Mihee (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Choi, Incheol (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Chung, Hyenmi (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Lee, Wonseok (Water Supply and Sewerage Research Division, National Institute of Environmental Research) ;
  • Park, Juhyun (Water Supply and Sewerage Research Division, National Institute of Environmental Research)
  • 투고 : 2017.03.28
  • 심사 : 2017.07.03
  • 발행 : 2017.07.30

초록

The subject samples include 150 and 170 samples collected from intake holes in the former and latter half of 2015, respectively. They were analyzed with ICP-MS. The average concentration of detected barium was $10.54{\mu}g/L$ ($0.23{\sim}168.22{\mu}g/L$) and $8.21{\mu}g/L$ ($0{\sim}255.65{\mu}g/L$) for the former and latter halves of 2015, respectively. The concentration distribution was the highest for the precambrian era at $19.07{\mu}g/L$ and the lowest Cenozoic era at $4.92{\mu}g/L$. The average value for sedimentary, metamorphic, and igneous rocks was $7.84{\mu}g/L$, $20.84{\mu}g/L$, and $9.47{\mu}g/L$, respectively, which indicates that it was the highest for metamorphic rocks. The study also analyzed correlations between barium and other minerals and found that magnesium recorded 0.44 and 0.71 for the former and latter half of 2015, respectively. As for barium concentration according to depth, it was relatively low in shallow groundwater (under 200 m) with its average concentration at $14.33{\mu}g/L$ and $14.71{\mu}g/L$ for the former and latter half of 2015, respectively. It was $8.53{\mu}g/L$ and $4.04{\mu}g/L$ in deep groundwater (over 200 m) for the two periods, respectively, The risk assessment results show that its average risk was HQ 0.00139 and HQ 0.00163 for the former and latter half of 2015, respectively, being considerably lower than "1", which suggests that barium poses few possibilities of consumption risk.

키워드

참고문헌

  1. Agency for Toxic Substances and Disease Registry (ATSDR). (1992). Toxicological Profile for Barium, Atlanta, GA, US Department of Health and Services, Agency for Toxic Substances and Disease Registry.
  2. Agency for Toxic Substances and Disease Registry (ATSDR). (2007). Toxicological Profile for Barium and Barium Compounds, US Department of Health and Human Services, Agency for Toxic Substances and Disease Registry.
  3. Bart, D. and Stephen Fisher, R. (2006). Groundwater Quality in Kentucky: Barium, University of Kentucky, Kentucky, 1-2.
  4. Boffito, C. (2002). Barium. In: Kirk-Othmer Encyclopedia of Chemical Technology, John Wiley & Sons.
  5. Calabrese, E. J. (1977). Excessive Barium and Radium-226 in Illinois Drinking Water, Journal of Environmental Health, 39(5), 366-369.
  6. Cha, Y. W., You, S. J., and Kim, K. S. (2004). A Study on the Identification and Source of Unrestricted Elenents in Groundwater, 14, 91 - 100, Rep. Busan Inst. Health & Environ, pp. 97. [Korean Literature]
  7. Evans, J. D. (1996). Straightforward Statistics for the Behavioral Sciences, Pacific Grove, CA: Brooks/Cole Publishing.
  8. Genter, M. B. (2001). Magnesium, Calcium, Strontium, Barium, and Radium: Barium, In: Bimgham, E., Cohrssen, B., Powell, C. H., eds. Patty's Toxicology, John Wiley & Sons.
  9. International Programme on Chemical Safety (IPCS). (1990). Barium Geneva, World Health Organization, International Programme on Chemical Safety (Environmental Health Criteria 107), International Programme on Chemical Safety.
  10. Karro, E. and Marandi, A. (2003). Mapping of Potentially Hazardous Elements in the Cambrian-Vendian Aquifer System, Northern Estonia, Bulletin of the Geological Society of Finland, 75, 17-27. https://doi.org/10.17741/bgsf/75.1-2.002
  11. Lanciotti, E. (1992). A Survey on Barium Contamination in Municipal Drinking Water of Tuscany, Igiene Moderna, 98(6), 793-800
  12. Lee, L. N., Ahn, K. H., Min, B. D., Yang, M. H., Choi, I. C., Chung, H. M., and Park, J. H. (2016). The Study on the Ion Water Characteristics of Raw Water in the Domestic Natural Mineral Water, Journal of the Korean Society on Water Environment, 32(5), 442-449. [Korean Literature] https://doi.org/10.15681/KSWE.2016.32.5.442
  13. Marandi, A., Karro, E., and Puura, E. (2004). Barium Anomaly in the Cambrian-Vendian Aquifer System in North Estonia, Environmental Geology, 47, 132-139. https://doi.org/10.1007/s00254-004-1140-y
  14. Newtonkorea. (2010). A Collection of Terminology in Science & Technology, Newtonkorea. [Korean Literature]
  15. Reeves, A. L. (1986). Handbook on the Toxicology of Metals, 2nd ed. New York, Elsevier/ Science Publishers BV, 321-328.
  16. Richard, B. M., and Ward, W. S. (1984). Distribution and Source of Barium in Ground Water at Cattaraugus Indian Reservation, Southwestern New York, Water-Resources Investigations Report 84-4129, United States Department of the Interior, 8-12.
  17. Robert, M., Enn, K., Lehte, S., Grazina D. (2009). The Origin of Barium in the Cambrian-Vendian Aquifer System, North Estonia, Estonian Journal of Earth Sciences, 58(3), 193-208. https://doi.org/10.3176/earth.2009.3.04
  18. Rogers, R. J. (1989). Geochemical Comparison of Ground Water in Areas of New England, New York, and Pennsylvania, Ground water, 27(5), 690-712. https://doi.org/10.1111/j.1745-6584.1989.tb00483.x
  19. Subramanian, K. S., Meranger, J. C. (1984). A Survey for Sodium, Potassium, Barium, Arsenic and Selenium in Canadian Drinking Water Supplies. Atomic Spectroscopy, 34-37
  20. Sung, I. H., Choo, C. O., Cho, B. W., Lee, B. D., Kim, T. K., and Lee, I. H. (1998). Hydrochemical Properties of the Groundwater Used for the Natural Mineral Waters in Precambrian Metamorphic Terrains, Korea, Journal of the Korean Society of Groundwater Environment 5(4), 203-209 [Korean Literature]
  21. United States Environmental Protection Agency (U. S. EPA.). (2005). Guideline for Carcinogen Risk Assessment, Risk Assessment Forum, Washington, DC., United States Environmental Protection Agency.
  22. United States Environmental Protection Agency (U. S. EPA). (2005). Integrated Risk Information System (IRIS). http://www.epa.gov/iris (accessed November. 2005).
  23. United States Environmental Protection Agency (U. S. EPA.). (2000). Risk Characterization Handbook, EPA 100-B-00-002, Science Policy Council, Environmental Protection Agency, Washington, DC 20460, United States Environmental Protection Agency, E-8.
  24. World Health Organization (WHO). (2004). Barium in Drinking-water, Background Document for Development of WHO Guideline for Drinking-Water Quality, World Health Organization.