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Environmental issues of groundwater in Korea: implications for sustainable use

Published online by Cambridge University Press:  14 March 2011

J.Y. LEE*
Affiliation:
Department of Geology, College of Natural Sciences, Kangwon National University, Chuncheon 200-701, Korea
*
*Correspondence: Professor Jin-Yong Lee e-mail: hydrolee@kangwon.ac.kr

Summary

Groundwater has been extensively exploited worldwide but is now confronted by a variety of problems, including groundwater depletion and contamination, that threaten its sustainable use as a clean water source. Groundwater is one of the major sources of water for domestic, agricultural and industrial uses, and provides 13% of the total annual water supply in Korea. Annual groundwater use has continuously increased from 2.57 billion m3 in 1994 to 3.72 billion m3 in 2007, of which 48.1% was consumed for domestic purposes. However, due to imprudent groundwater development and inappropriate management, Korea has confronted some critical groundwater problems, including extensive water level decline and quality deterioration caused by petroleum hydrocarbons and chlorinated solvents. Among 193 national groundwater deep-monitoring wells nationwide, 62% showed decreasing water levels over the period 2004–2008. Soil and groundwater contamination by petroleum hydrocarbons was detected at a great number of military bases and public facilities, which drew national attention and complaints. The presence of high levels of radionuclides such as uranium and radon in groundwater has awakened controversy on their health effects. Increasing outbreaks of massive gastroenteritis were attributed to noroviruses in contaminated groundwater, and raised public health concerns. In addition, chlorinated solvents, especially trichloroethylene (TCE), have been frequently found in urban and industrial groundwaters, further adding to the burdens of environmental authorities. Consequently, these groundwater-related environmental issues have forced the Korean government and relevant authorities to urgently devise mitigation plans to secure a sustainable future use of groundwater resources. This paper provides details of the groundwater issues and implications for appropriate development and management.

Type
Papers
Copyright
Copyright © Foundation for Environmental Conservation 2011

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References

Adrian, O.G., Rudolph, D.L. & Cherry, J.A. (1999) The analysis of long term land subsidence near Mexico city: field investigations and predictive modeling. Water Resources Research 35: 33273341.Google Scholar
Baek, W. & Lee, J.Y. (2010) Source apportionment of trichloroethylene in groundwater of an industrial complex in Korea: a 15-year dispute and perspective. Water and Environment Journal doi: 10.1111/j.1747-6593.2010.00226 (in press).Google Scholar
Bauer, S., Bayer–Raich, M., Holder, T., Kolesar, C., Müller, D. & Ptak, T. (2004) Quantification of groundwater contamination in an urban area using integral pumping tests. Journal of Contaminant Hydrology 75: 183213.CrossRefGoogle Scholar
Boulton, A.J. (2005) Chances and challenges in the conservation of groundwaters and their dependent ecosystems. Aquatic Conservation: Marine and Freshwater Ecosystems 15: 319323.CrossRefGoogle Scholar
Boulton, A.J., Fenwick, G.D., Hancock, P.J. & Harvey, M.S. (2008) Biodiversity, functional roles and ecosystem services of groundwater invertebrates. Invertebrate Systematics 22: 103116.CrossRefGoogle Scholar
Brugge, D., de Lemos, J.L. & Oldmixon, B. (2005) Exposure pathways and health effects associated with chemical and radiological toxicity of natural uranium: a review. Reviews on Environmental Health 20: 177193.Google Scholar
Chae, G.T., Yun, S.T., Choi, B.Y., Yu, S.Y., Jo, H.Y., Mayer, B., Kim, Y.J. & Lee, J.Y. (2008) Hydrochemistry of urban groundwater, Seoul, Korea: the impact of subway tunnels on groundwater quality. Journal of Contaminant Hydrology 101: 4252.Google Scholar
Cho, H.J., Fiacco, R.J. Jr. & Daly, M. (2008) Characterization of crystalline bedrock contaminated by dense nonaqueous liquid. Ground Water Monitoring and Remediation 28: 4959.CrossRefGoogle Scholar
Choi, H.M. & Lee, J.Y. (2009) Parametric and non-parametric trend analysis for water levels of groundwater monitoring wells in Jeju Island. Journal of Soil and Groundwater Environment 14: 4150.Google Scholar
Collman, G.W., Loomis, D.P. & Sandler, D.P. (1988) Radon-222 concentration in groundwater and cancer mortality in North Carolina. International Archives of Occupational and Environmental Health 61: 1318.CrossRefGoogle ScholarPubMed
Danielopol, D.L., Griebler, C., Gunatilaka, A. & Notenboom, J. (2003) Present state and future prospects for groundwater ecosystems. Environmental Conservation 30: 104130.Google Scholar
de Roda Husman, A.M., Lodder, W.J., Penders, E.J.M., Krom, A.P., Bakker, G.L. & Hoogenboezem, W. (2005) Viruses in the Rhine and Source Waters for Drinking Water Production. Nieuwegein, The Netherlands: RIWA.Google Scholar
Eamus, D. & Froend, R. (2006) Groundwater-dependent ecosystems: the where, what and why of GDSs. Australian Journal of Botany 54: 9196.CrossRefGoogle Scholar
Endersbee, L. (2006) The world's water wells are drying up! Water Well Journal Spring: 20–28.Google Scholar
Endreny, T.A. (2005) Land use and land cover effects on runoff processes: urban and suburban development. Encyclopedia of Hydrological Sciences 10: 17751804.Google Scholar
Ford, M. & Tellam, J.H. (1994) Source, type and extent of inorganic contamination within the Birmingham urban aquifer system, UK. Journal of Hydrology 156: 101135.Google Scholar
Gambolati, G. & Freeze, R.A. (1973) Mathematical simulation of the subsidence of Venice: theory. Water Resources Research 9: 721733.CrossRefGoogle Scholar
Gabrieli, R., Maccari, F., Ruta, A., Paná, A. & Divizia, M. (2009) Norovirus detection in groundwater. Food and Environmental Virology 1: 9296.Google Scholar
Han, J.H. & Park, K.H. (1996) Abundances of uranium and radon in groundwater of Taejeon area. Economic and Environmental Geology 29: 589595.Google Scholar
Haramoto, E., Katayama, H., Oguma, K. & Ohgaki, S. (2005) Application of cation-coated filter method to detection of noroviruses, enteroviruses, adenoviruses, and torque teno viruses in the Tamagawa River in Japan. Applied and Environmental Microbiology 71: 24032411.CrossRefGoogle ScholarPubMed
Ho, C.H., Lee, J.Y., Ahn, M.H. & Lee, H.S. (2003) A sudden change in summer rainfall characteristics in Korea during the late 1970s. International Journal of Climatology 23: 117128.Google Scholar
Huff, J., Melnick, R., Tomatis, L., LaDou, J. & Teitelbaum, D. (2004) Trichloroethylene and cancers in humans. Toxicology 197: 185187.CrossRefGoogle ScholarPubMed
Humphreys, W.F. (2009) Hydrogeology and groundwater ecology: does each inform the other? Hydrogeology Journal 17: 521.CrossRefGoogle Scholar
Jackson, R.B., Carpenter, S.R., Dahm, C.N., McKnight, D.M., Naiman, R.J., Postel, S.L. & Running, S.W. (2001) Water in a changing world. Ecological Applications 11: 10271045.CrossRefGoogle Scholar
Jean, J.S. (1999) Outbreak of enteroviruses and groundwater contamination in Taiwan: concept of biomedical hydrogeology. Hydrogeology Journal 7: 339340.Google Scholar
Jeon, K.H., Lee, J.Y. & Choi, S.I. (2008) Heavy metal contamination of soil and groundwater at a rail rolling stock workshop. Soil and Sediment Contamination 17: 7597.Google Scholar
Kim, G.K (2007) Springs in Korea. Seoul, Korea: Ehwa Womans University.Google Scholar
Kim, S.H., Cheon, D.S., Kim, J.H., Lee, D.H., Jheong, W.H., Heo, Y.J., Chung, H.M., Jee, Y. & Lee, J.S. (2005) Outbreaks of gastroenteritis that occurred during school excursions in Korea were associated with several waterborne strains of norovirus. Journal of Clinical Microbiology 43: 48364839.CrossRefGoogle ScholarPubMed
Ko, N.Y., Lee, K.K. & Hyun, Y. (2005) Optimal groundwater remediation design of a pump and treat system considering clean-up time. Geosciences Journal 9: 2331.Google Scholar
Konikow, L.F. & Kendy, E. (2005) Groundwater depletion: a global problem. Hydrogeology Journal 13: 317320.Google Scholar
Kwun, J.W. & Lee, C.H. (2006) Trends of recent food-borne disease outbreaks in Korea. Journal of Korean Medical Association 7: 573581.Google Scholar
Lee, D.H., Cody, R.D. & Hoyle, B.L. (2001) Laboratory evaluation of the use of surfactants for ground water remediation and the potential for recycling them. Ground Water Monitoring and Remediation 21: 4957.Google Scholar
Lee, L.J.H., Chan, C.C., Chung, C.W., Ma, Y.C., Wang, G.S. & Wang, J.D. (2002) Health risk assessment on residents exposed to chlorinated hydrocarbons contaminated in groundwater of a hazardous waste site. Journal of Toxicology and Environmental Health, Part A 65: 219235.CrossRefGoogle ScholarPubMed
Lee, J.Y. (2007) Status of groundwater and soil contamination in 23 military installations. Summary Report, Korean National Assembly, Seoul, Korea.Google Scholar
Lee, J.Y. (2008) A review on occurrence, health risk and mitigation measure of uranium, radium and radon in groundwater. Journal of the Geological Society of Korea 44: 341352.Google Scholar
Lee, J.Y. (2010) Comment on ‘Groundwater monitoring in Denmark: characteristics, perspectives and comparison with other countries’: report published in Hydrogeology Journal (2009) 17: 827–842, by Lisbeth Flindt Jorgensen, Jens Stockmarr. Hydrogeology Journal 18: 803–804.Google Scholar
Lee, J.Y. & Lee, K.K. (2000) Use of hydrologic time series data for identification of recharge mechanism in a fractured bedrock aquifer system. Journal of Hydrology 229: 190201.CrossRefGoogle Scholar
Lee, J.Y. & Lee, K.K. (2004) A short note on investigation and remediation of contaminated groundwater and soil in Korea. The Journal of Engineering Geology 14: 123130.Google Scholar
Lee, J.Y. & Song, S.H. (2007) Evaluation of groundwater quality in coastal areas: implications for sustainable agriculture. Environmental Geology 52: 12311242.CrossRefGoogle Scholar
Lee, J.Y., Lee, C.H. & Lee, K.K. (2003) Evaluation of remedial alternatives for a petroleum contaminated unconfined aquifer with fluctuating groundwater level. Environmental Geology 44: 968978.Google Scholar
Lee, J.Y., Moon, S.H. & Yun, S.T. (2010) Contamination of groundwater by arsenic and other constituents in an industrial complex. Environmental Earth Sciences 60: 6579.Google Scholar
Lee, J.Y., Yi, M.J., Moon, S.H., Cho, M., Lee, J.M., Ahn, K.H. & Won, J.H. (2007 a) Causes of the changes in groundwater levels at Daegu, Korea: the effect of subway excavations. Bulletin of Engineering Geology and the Environment 66: 251258.Google Scholar
Lee, J.Y., Yi, M.J., Yoo, Y.K., Ahn, K.H., Kim, G.B. & Won, J.H. (2007 b) A review of the national groundwater monitoring network in Korea. Hydrological Processes 21: 907919.Google Scholar
Lee, M., Kang, H. & Do, W. (2005) Application of nonionic surfactant-enhanced in situ flushing to a diesel contaminated site. Water Research 39: 139146.Google Scholar
Li, C., Tang, X. & Ma, T. (2006) Land subsidence caused by groundwater exploitation in the Hangzhou-Jiaxing-Huzhou Plain, China. Hydrogeology Journal 14: 16521665.Google Scholar
Maunula, L. (2007) Waterborne norovirus outbreaks. Future Virology 2: 101112.Google Scholar
Maunula, L., Miettinen, I.K. & von Bonsdorff, C.H. (2005) Norovirus outbreaks from drinking water. Emerging Infectious Diseases 11: 17161721.Google Scholar
ME (2008) A result of investigation on radionuclides in groundwater. Briefing Material, Ministry of Environment, Gwacheon, Korea.Google Scholar
MLTM & K-Water (2007) A Revised National Master Plan for Groundwater Management. Gwacheon, Korea: MLTM.Google Scholar
MLTM & K-Water (2008) An Annual Report on Groundwater Investigation. Gwacheon, Korea: MLTM.Google Scholar
Nickson, R., McArthur, J., Burgess, W., Ahmed, K.M., Ravenscroft, P. & Rahman, M. (1998) Arsenic poising of Bangladesh groundwater. Nature 395: 338.Google Scholar
Nordstrom, D.K. (2002) Worldwide occurrence of arsenic in ground water. Science 296: 21432145.CrossRefGoogle ScholarPubMed
Nygård, K., Torvén, M., Ancker, C., Knauth, S.B., Hedlund, K.O., Giesecke, J., Andersson, Y. & Svensson, L. (2003) Emerging genotype (GGIIb) of norovirus in drinking water, Sweden. Emerging Infectious Diseases 9: 15481552.CrossRefGoogle ScholarPubMed
Orloff, K.G., Mistry, K., Charp, P., Metcal, S., Marino, R., Shelly, T., Melaro, E., Donohoe, A.M. & Jones, R.L. (2004) Human exposure to uranium in groundwater. Environmental Research 94: 319326.Google Scholar
Pankow, J.F., Thomson, N.R., Johnson, R.L., Baehr, A.L. & Zogorski, J.S. (1997) The urban atmosphere as a non-point source for the transport of MTBE and other volatile organic compounds (VOCs) to shallow groundwater. Environmental Science and Technology 31: 28212828.CrossRefGoogle Scholar
Park, J.H. (2008) Effect of Groundwater Use on Drying of Streams, pp. 129162. Seoul, Korea: Groundwater Division of Korea Water Resources Association.Google Scholar
Park, Y.C., Jo, Y.J. & Lee, J.Y. (2011) Trends of groundwater data from the Korean National Groundwater Monitoring Stations: indication of any change? Geosciences Journal (in press).Google Scholar
Parshionikar, S.U., Willian-True, S., Shay Fout, G., Robbins, D.E., Seys, S.A., Cassady, J.D. & Harris, R. (2003) Waterborne outbreak of gastroenteritis associated with a norovirus. Applied and Environmental Microbiology 69: 52635268.CrossRefGoogle ScholarPubMed
Phien-wej, N., Giao, P.H. & Nutalaya, P. (2006) Land subsidence in Bangkok, Thailand. Engineering Geology 82: 187201.Google Scholar
Pitt, R., Clark, S., Parmer, K. & Field, R. (1996) Groundwater Contamination from Stormwater Infiltration. Chelsea, Michigan, USA: Ann Arbor Press Inc.Google Scholar
Reynolds, K.A. (2004) Groundwater vulnerability to microbial contamination. Water Conditioning and Purification 46: 2830.Google Scholar
Rivett, M.O., Lerner, D.N. & Lloyd, J.W. (2007) Chlorinated solvents in UK aquifers. Water and Environment Journal 4: 242250.Google Scholar
Shah, T., Molden, D., Sakthivadivel, R. & Seckler, D. (2000). The Global Groundwater Situation: Overview of Opportunities and Challenges. Colombo, Sri Lanka: International Water Management Institute.Google Scholar
Siegrist, R.L., Lowe, K.S., Crimi, M.L. & Urynowicz, M.A. (2006) Quantifying PCE and TCE in DNAPL source zones: effects of sampling methods used for intact cores at varied contaminant levels and media temperatures. Ground Water Monitoring and Remediation 26: 114124.Google Scholar
Song, S.H., Lee, J.Y. & Park, N. (2007) Use of vertical electrical soundings to delineate seawater intrusion in a coastal area of Byunsan, Korea. Environmental Geology 52: 12071219.Google Scholar
Squillace, P.J., Moran, M.J. & Price, C.V. (2004) VOCs in shallow groundwater in new residential/commercial areas of the United States. Environmental Science and Technology 38: 53275338.Google Scholar
Stein, H., Kellermann, C., Schmidt, S.I., Brielmann, H., Steube, C., Berkhoff, S.E., Fuchs, A., Hahn, H.J., Thulin, B. & Griebler, C. (2010) The potential use of fauna and bacteria as ecological indicators for the assessment of groundwater quality. Journal of Environmental Monitoring 12: 242254.Google Scholar
Steube, C., Richter, S. & Griebler, C. (2009) First attempts towards an integrative concept for the ecological assessment of groundwater ecosystems. Hydrogeology Journal 17: 2335.CrossRefGoogle Scholar
Thu, T.M. & Fredlund, D.G. (2000) Modelling subsidence in the Hanoi City area, Vietnam. Canadian Geotechnical Journal 37: 621637.CrossRefGoogle Scholar
UNESCO (1984) Guidebook to Studies of Land Subsidence due to Ground-Water Withdrawal. Michigan, USA: Book Crafters.Google Scholar
USEPA (2007) Ionizing Radiation Fact Book. EPA-402-F-06-061, Washington DC, USA: USEPA.Google Scholar
USEPA (2008) Assessment of risks from radon in homes [www document]. URL http://www.epa.govGoogle Scholar
Vörösmarty, C.J., Green, P., Salisbury, J. & Lammers, R.B. (2000) Global water resources: vulnerability from climate change and population growth. Science 289: 284288.Google Scholar
Wakida, F.T. & Lerner, D.N. (2005) Non-agricultural sources of groundwater nitrate: a review and case study. Water Research 39: 316.Google Scholar
Won, J.H., Lee, J.Y., Kim, J.W. & Koh, G.W. (2006) Groundwater occurrence on Jeju Island, Korea. Hydrogeology Journal 14: 532547.Google Scholar
Yu, S.Y., Chae, G.T., Jeon, K.H., Jeong, J.S. & Park, J.G. (2006) Trichloroethylene contamination in fractured bedrock aquifer in Wonju, South Korea. Bulletin of Environmental Contamination and Toxicology 76: 341348.Google Scholar
Zapecza, O.S. & Szabo, Z. (1986) Natural radioactivity in groundwater-a review. In: USGS Water-Supply Paper 2325, Ground Water Quality: Hydrologic Conditions and Event, pp. 5057. Washington, DC, USA: USGS.Google Scholar