DOI QR코드

DOI QR Code

Evaluation of Seawater Intrusion on Costal Groundwater using Systematic Analytical Method

계층적 분석방법을 이용한 해수침투 영향 평가

  • Kim, Chang-Hoon (Department of Civil Engineering, The University of Seoul) ;
  • Kim, Nam-Ju (GEO engineering Co., Ltd.) ;
  • Park, Youngyun (Department of Geology and Geophysics, Kangwon National University)
  • 김창훈 (서울시립대학교 토목공학과) ;
  • 김남주 ((주)지오엔지니어링) ;
  • 박영윤 (강원대학교 지질지구물리학부)
  • Received : 2016.10.19
  • Accepted : 2017.03.28
  • Published : 2017.03.31

Abstract

Seawater intrusion was evaluated using electrical conductivity, chemical proxies, and oxygen isotopic compositions in coastal area. It seems that groundwater in the area where the electrical conductivity is over $3,000{\mu}S/cm$ is influenced by seawater. However, it is very difficult that seawater intrusion is distinguished from other contaminants using the electrical conductivity. The chemical proxies and oxygen and hydrogen isotopic compositions can quantitatively estimate seawater intrusion. However, these method is a costly disadvantage. Therefore, firstly, groundwater contamination by seawater intrusion was evaluated using electrical conductivity and then the additional chemical and isotopic analysis were conducted in areas where possibility of contamination by seawater intrusion is high. These systematic analytical method can reduce analytical cost to quantitatively evaluate influence of seawater intrusion on coastal groundwater and may improve efficiency of analytical method for seawater intrusion.

해안지역에서 지하수의 전기전도도, 화학적 지시자, 동위원소 조성을 이용하여 해수침투를 평가하였다. 전기전도도가 $3,000{\mu}S/cm$ 보다 높은 지역을 해수의 영향을 받은 지역으로 평가할 수는 있지만 다른 오염원과 해수침투를 구분하는 것이 매우 어렵다. 화학적 지시자 및 산소와 수소 동위원소 조성은 해수침투의 영향을 정량적으로 평가할 수 있지만 비용이 많이 드는 단점이 있다. 따라서 전기전도도를 이용하여 1차적으로 해수침투 가능성을 평가하고 해수침투의 영향을 받은 것으로 분류된 지역에 대해서 추가적인 화학 및 동위원소 분석을 수행함으로써 해수침투의 영향 정량적으로 평가하는데 소요되는 비용을 줄일 수 있으며 이러한 분석방법을 통해 해수침투 평가방법의 효율성을 향상시킬 수 있다.

Keywords

References

  1. Chang, S. W., 2014, A review of recent research into coastal groundwater probloms and associated case studies, The Journal of Engineering Geology, 24, 597-608 (in Korean with English abstract). https://doi.org/10.9720/kseg.2014.4.597
  2. Hwang, H. S., Lee, S. K., Ko, D. C., Kim, Y. S., and Park, I. H., 2000, Detection of sea-water intrusion caused by tidal action using DC resistivity monitoring, Mulli-Tamsa, 3, 1-6 (in Korean with English abstract).
  3. Hwang, S., Park, K. G., Shin, J., and Lee, S. K., 2007, Relationship between the groundwater resistivity and NaCl equivalent salinity in western and southern coastal area, Korea, Mulli-Tamsa, 10, 361-368 (in Korean with English abstract).
  4. Kim, D. J., Ha, H., C., and On, H. S., 2003a, Monitoring of seawater intrusion in unconfined physical aquifer model using time domain reflectometry, The Journal of Engineering Geology, 13, 17-27 (in Korean with English abstract).
  5. Kim, H. J., Hamm, S. Y., Kim, N. H., J., Cheong, J. Y., Lee, J. H., and Jang, S., 2009a, Characteristics of groundwater contamination caused by seawater intrusion and agricu.tral activity in Sacheon and Hadong area, Republic of Korea, Economic and Environmental Geology, 42, 575-589 (in Korean with English abstract).
  6. Kim, J. H., Yum, B. W., Kim, R. H., Koh, D. C., Cheong, T. J., Lee, J., and Change H. W., 2003b, Application of cluster analysis for the hydrogeochemical factor of saline groundwater in Kimje, Korea. Geosciences Journal, 7, 313-322. https://doi.org/10.1007/BF02919561
  7. Kim, K. H., Shin, J., Koh, E. H., Koh, G. W., and Lee, K. K., 2009b, Sea level rise around Jeju island due to global warming and movement of groundwater/seawater interface in the eastern part of Jeju island, Journal of Soil and Groundwater Environment, 14, 68-79 (in Korean with English abstract).
  8. Kim, R. H., Kim, J. H., Ryu, J. S., and Chang, H. W., 2006, Saliniation properties of a shallow groundwater in a coastal reclaimed area, Yeonggwang, Korea. Environmental Geology, 49, 1180-1194. https://doi.org/10.1007/s00254-005-0163-3
  9. Lee, B. J. and Moon, S. H., 2008, Integrated approach for evaluating the characteristics of seawater intrusion using fact analysis and time series analysis: Seocheon-Gunsan area, Journal of the Geological Society of Korea, 44, 219-232 (in Korean with English abstract).
  10. Lee, J. Y. and Song, S. H., 2007a, Evaluation of groundwater quality in coastal area: implication for sustainable agriculture. Environmental Geology, 52, 1231-1242. https://doi.org/10.1007/s00254-006-0560-2
  11. Lee, J. Y. and Song, S. H., 2007b, Groundwaer chemistry and ionic rations in a western coastal aquifer of Buan, Korea; implication for seawater intrusion, Geosciences Journal, 11, 259-270. https://doi.org/10.1007/BF02913939
  12. Lee, J. Y., Yi, M. J., Song, S. H., and Lee, G. S., 2008, Evaluation of seawater intrusion on the groundwater data obtained from the monitoring network in Korea, Water International, 33, 127-146. https://doi.org/10.1080/02508060801927705
  13. Lu, H. Y., Peng, T. R., and Liou, T. S., 2008, Identification of the origin of salinization in groundwater using multivariate statistical analysis and geochemical modeling: a case study of Kaohsiung, Southwest Taiwan, Environmental Geology, 55, 339-352. https://doi.org/10.1007/s00254-007-0979-0
  14. Mikolajkow, J., 2003, Laboratory mehtods of estimating the retardation factor of migration mineral nitrogen compounds in sallow groundwater, Geological Quarterly, 47, 91-96.
  15. Ministry of Agriculture, Food, and Rural Affairs (MAFRA) and Korea Rural Community Corporation (KRC), 2013, An annual report on investigation of seawater intrusion, MAFRA and KRC, 539p (in Korean).
  16. Ministry of Agriculture, Food, and Rural Affairs (MAFRA) and Korea Rural Community Corporation (KRC), 2014, An annual report on investigation of seawater intrusion, MAFRA and KRC, 582p (in Korean).
  17. Ministry of Food, Agriculture, Forestry, and Fisheries (MFAF) and Korea Rural Community Corporation (KRC), 2010, An annual report on investigation of seawater intrusion, MFAF and KRC, 623p (in Korean).
  18. Ministry of Food, Agriculture, Forestry, and Fisheries (MFAF) and Korea Rural Community Corporation (KRC), 2011, An annual report on investigation of seawater intrusion, MFAF and KRC, 667p (in Korean).
  19. Ministry of Food, Agriculture, Forestry, and Fisheries (MFAF) and Korea Rural Community Corporation (KRC), 2012, An annual report on investigation of seawater intrusion, MFAF and KRC, 764p (in Korean).
  20. Mondal, N. C., Singh, V. P., Singh, V. S., and Saxena, V. K., 2010, Determining the interaction between groundwater and saline water through groundwater major ions chemistry, Journal of Hydrology, 388, 100-111. https://doi.org/10.1016/j.jhydrol.2010.04.032
  21. Na, C. K. and Son, C. I., 2005, Groundwater quality and pollution characteristics at Seomjin river basin: pollution source and risk assessment, Economic and Environmental Geology, 38, 261-272 (in Korean with English abstract).
  22. Park, K. G., Shin J., Hwang, S., and Park, I., 2007, Fresh water injection test to mitigate seawater intrusion and geophysical monitoring in coastal area, Mulli-Tamsa, 10, 353-360 (in Korean with English abstract).
  23. Park, S. C., Yun, S. T., Chae, G. T., Yoo, I. S., Shin, K. S., Heo, C. H., and Lee. S. K., 2005, Regional hydrochemical ctudy on salinization of coastal aquifers, western coastal area of South Korea. Journal of Hydrology, 313, 182-194. https://doi.org/10.1016/j.jhydrol.2005.03.001
  24. Park, Y., Lee, J. Y., Kim, J. H., and Song, S. H., 2012, National scale evaluation of groundwater chemistry in Korea coastal aquifer; evidence of seawater intrustion, Environmental Earth Sciences, 66, 707-718. https://doi.org/10.1007/s12665-011-1278-3
  25. Park, Y., Lee, J. Y., Song, S. H., and Kim, J. H., 2016, Salinization and desalinization of western and southern coastal groundwater of Korea: implication for agriculture, Journal of Soil and Groundwater Remediation, 3, 1-12.
  26. Shim, B. O. and Chung, S. Y., 2003, Estimation of the interface of seawater intrusion in a coastal aquifer system with SHARP model, Journal of Soil and Groundwater Environment, 8, 68-74 (in Korean with English abstract).
  27. Shim, B. O., Chung, S. Y., Kim, H. J., and Sung, I. H., 2002, Change of seawater intrusion range by the difference of longitudinal dispersivity in Hydrodynamic modeling, Journal of Soil and Groundwater Environment, 7, 59-67 (in Korean with English abstract).
  28. Shin, I. H., Park, C. Y., Ahan, K. S., and Jeong, Y. J., 2002, Hydrogeochemistry of groundwaters at the Gogum island area in Jeonnam, Korea, Journal of Korean Earth Science Society, 23, 474-485 (in Korean with English abstract).
  29. Shin, J. and Byun, J., 2010, Fresh water injection test in a fractured bedrock aquifer for the mitigation of seawater intrusion, Economic and Environmental Geology, 43, 371-379 (in Korean with English abstract).
  30. Stuyfzand, P. J., 1986, A new hydrochemical classification of water types: principles and application to the coastal dunes aquifer system of the Netherlands, Proceedings of 9th Salt Water Intrusion Meeting, Delft, The Netherlands, 641-655.
  31. Stuyfzand, P. J., 1993, Hydrochemistry and hydrology of the coastal dune area of the Western Netherland. Ph.D. Thesis, Free University of Amsterdam. 1-366.
  32. Vengosh, A. and Rosenthal, E., 1994, Saline groundwater in Israel: its bearing on the water crisis in the country, Journal of Hydrology, 156, 389-430. https://doi.org/10.1016/0022-1694(94)90087-6
  33. Walraevens, K. and Van Camp, M., 2004, Advances in understanding natural groundwater quality controls in coastal aquifers, Salt Water Intrusion Meeting, Cartagena, Spain, 449-463.