DOI QR코드

DOI QR Code

Characteristics of Spatial and Temporal Organic Matter in the Han River Watershed

한강수계 유기물의 시·공간적 분포 특성 비교

  • Yu, Soonju (Han-River Environment Research Center, National Institute of Environmental Research) ;
  • Cho, Hangsoo (Han-River Environment Research Center, National Institute of Environmental Research) ;
  • Ryu, Ingu (Han-River Environment Research Center, National Institute of Environmental Research) ;
  • Son, Juyeon (Han-River Environment Research Center, National Institute of Environmental Research) ;
  • Park, Minji (Han-River Environment Research Center, National Institute of Environmental Research) ;
  • Lee, Bomi (Han-River Environment Research Center, National Institute of Environmental Research)
  • 유순주 (국립환경과학원 한강물환경연구소) ;
  • 조항수 (국립환경과학원 한강물환경연구소) ;
  • 류인구 (국립환경과학원 한강물환경연구소) ;
  • 손주연 (국립환경과학원 한강물환경연구소) ;
  • 박민지 (국립환경과학원 한강물환경연구소) ;
  • 이보미 (국립환경과학원 한강물환경연구소)
  • Received : 2018.04.02
  • Accepted : 2018.07.20
  • Published : 2018.07.30

Abstract

The purpose of this study is to find the characteristics of organic matters based on the distribution and oxidation rates, as noted according to the spatial and temporal variations from 2008 to 2016. Generally speaking, the Han River system is separated into one lower course and two upper courses which are the Namhan River and Bukhan River. The seasonal factor is one of the most important causes of water quality changing in both of the upper courses as a result of a few pollution sources. The concentration of organic matter was measured as higher in the lower course into which great streams with point and non-point sources were identified. According to seasonal variations, however, the change of the organic matter in the lower course is comparatively slighter than that of organic matters in the upper courses. The oxidation rates related to the BOD were 15 %, 17 % and 26 % in the Bukhan River, Namhan River and the lower course, respectively. These results could be explained that more biodegradable organic matter were seen to have existed in the lower courses comparing to the activity in the upper course. The oxidation rates of the BOD were noted as relatively higher in the eutrophicated places with phytoplankton. Therefore the BOD is one of the good index models to find the characteristic of the eutrophicated water. On the other hand BOD would not be enough to estimate concentration of refractory organic matters in the Bukhan and Namhan river. Consequently, both of the TOC and BOD are necessary indices to understand the identified refractory and/or biodegradable characteristics of organic matter.

Keywords

References

  1. Amon, R. M. W. and Benner, R. (1994). Rapid Cycling of High-molecular Weight Dissolved Organic Matter in the Ocean, Nature, 369, 549-552. https://doi.org/10.1038/369549a0
  2. Charpra, S. C. (1987). Surface Water-Quality Modeling, Waveland Press, Illinois, 347-365.
  3. Chapra, S. C., Pelletier, G. J., and Tao, H. (2012). QUAL2K: A Modeling Framework for Simulating River and Stream Water Quality, Version 2.12: Documentation and Users Manual, Tufts University, Massachusetts, 31-71.
  4. Choi, I. W., Kim, J. H., Im, J. K., Park, T. J., Kim, S. Y., Son, D. H., Huh, I. A., Rhew, D. H., and Yu, S. J. (2015). Application of TOC Standards for Managing Refractory Organic Compounds in Industrial Wastewater, Journal of Korean Society on Water Environment, 31(1), 29-34. [Korean Literature] https://doi.org/10.15681/KSWE.2015.31.1.29
  5. Choi, J. Y. and Han, D. H. (2011). Development of Water Quality Standard for TOC as Organic Matter Index, Seoul Studies, 12(3), 173-184. [Korean Literature]
  6. Choi, O. Y., Kim, H. T., Seo, H. S., and Han, I. S. (2017). Analysis of Water Quality Changes & Characterization at the Watershed in Han River Basin for Target Indicator in TMDLs, Journal of Korean Society on Water Environment, 33(1), 15-33. [Korean Literature] https://doi.org/10.15681/KSWE.2017.33.1.15
  7. Cole, T. M. and Wells, S. A (2013). CE-QUAL-W2: A TwoDimensional, Laterally Averaged, Hydrodynamic and Water Quality Model, Version 3.71 User Manual, Portland State University, B-1-B-75.
  8. Fry, B. and Sherr, E. B. (1984). d13C Measurements As Indicators of Carbon Flow in Marine and Freshwater Ecosystem, Contributions in Marine Science, 27, 196-229.
  9. Gil, K. I., Kim, T. W., and Jung, M. S. (2011). Runoff Characteristics of Refractory Organic Matters from South-Han River Watershed during Rainfall Event and Dry Season, Journal of Korean Society on Water Environment, 27(3), 306-313. [Korean Literature]
  10. Hama, T. and Handa, N. (1980). Molecular Weight Distribution and Characterization of Organic Matter From Lake Water, Archiv Fur Hydrobiologie, 90, 106-120.
  11. Hwhang, M. Y., Son, J. Y., Park, J. R., Kim, G. H., Jung, D. S., Cho, H. S., Lee, Y. J., and Yu, S. J. (2016). Comparison of Correlation and Oxidation Efficiency of Organic matters in the Main Inflows of Lake Paldang, Journal of Environmental and Sanitary Engineering, 31(1), 43-52. [Korean Literature]
  12. Jeong, D. H., Cho, Y. S., Ahn, K. H., Park, H. W., Shin, H. S., Hur, J., and Han D. H. (2016). A Study on the Determination Method of TOC Effluent Limitation for Public Sewage Treatment Plants, Journal of Korean Society of Water and Wastewater, 30(3), 241-249. [Korean Literature] https://doi.org/10.11001/jksww.2016.30.3.241
  13. Jung, K. Y., Park, M. H., Hur, J., Lee, S. Y., and Shin, J. K. (2009). Comparison of Spectroscopic Characteristics and Chemical Oxygen Demand Efficiencies for Dissolved Organic Matters from Diverse Sources, Journal of Korean Society on Water Environment, 25(4), 589-596. [Korean Literature]
  14. Kim, L. H. and Kang, J. H. (2004). Characteristics of First Flush in Highway Storm Runoff, Journal of Korean Society on Water Environment, 20(6), 614-646. [Korean Literature]
  15. Kim, B. C., Jung, S. M., Jang, C. W., and Kim, J. K. (2017). Comparison of BOD, COD and TOC as the Indicator of Organic Matter Pollution in Streams and Reservoirs of Korea, Journal of the Korean Society of Environmental Engineers, 29(6), 640-643. [Korean Literature]
  16. Kim, J. K., Shin, M. S., Jang, C. W., Jung, S. M., and Kim, B. C. (2007). Comparison of TOC and DOC Distribution and the Oxidation Efficiency of BOD and COD in Several Reservoirs and Rivers in the Han River System, Journal of Korean Society on Water Environment, 23(1), 72-89. [Korean Literature]
  17. Korea Meteorological Administration (KMA). (2017). Meteorological Data Open Portal, https://data.kma.go.kr. (accessed July 2017)
  18. Lai, M. T., Shin, J. K., and Hur, J. (2011). Estimating the Biodegradability of Treated Sewage Samples Using spectro- nous Fluorescence Spectra, Sensors, 11, 7382-7394. https://doi.org/10.3390/s110807382
  19. Leenheer, J. A. and Huffman, Jr. E. W. (1979). Analytical Method for Dissolved Organic Carbon Fractionation, Water Resources Investigation Report, 79-4. U.S. Geological Survey, United State, 1-16.
  20. Mcknight, D. M., Andrews, E. D., Spaulding, S. A., and Aiken, G. R. (1994). Aquatic Fulvic Acids in Algal Rich Antarchic Ponds, Limnology Ocenaography, 39, 1972-1979. https://doi.org/10.4319/lo.1994.39.8.1972
  21. Ministry of Environment (ME). (2010). Environmental Geographic Information Service, https://egis.me.go.kr. (accessed July 2017)
  22. Ministry of Environment (ME). (2017a). Water Quality Monitoring Program, Ministry of Environment. [Korean Literature]
  23. Ministry of Environment (ME). (2017b). Water Information System, http://water.nier.go.kr. (accessed July 2017)
  24. National Institute of Environmental Research (NIER). (2004). Development of Stream Water Quality Model for Total Maximum Daily Load (I), NIER NO. 2004-19-725, 10-122. [Korean Literature]
  25. National Institute of Environmental Research (NIER). (2005). Development of Stream Water Quality Model for Total Maxi- mum Daily Load(II), NIER NO. 2005-23-768, 4-14. [Korean Literature]
  26. National Institute of Environmental Research (NIER). (2013). A Study of Water Quality Model Optimization with an Application of TMDL Reflected on the Change of Stream Environment, NIER-SP2013-457, 68-100. [Korean Literature]
  27. Ochiai, M. and Hanya, T. (1980). Change in Monosaccharide Composition in the Course of Decomposition of Dissolved Carbohydrates in Lake Water, Archiv Fur Hydrobiologie, 90, 257-264.
  28. Owens, N. J. R. (1987). Natural Variation in 15N in the Marine Environment, Advances Marine Biology, 24, 390-451.
  29. Park, H. K., Byeon M. S., Choi, M. J., and Kim Y. J. (2008). The Effect Factors on the Growth of Phytoplankton and the Sources of Organic Matters in Downstream of South-Han River, Journal of Korean Society on Water Environment, 24(5), 556-562. [Korean Literature]
  30. Park, J. H., Park, B. K., Lee, J. K., and Rhew, D. H. (2013). Necessity of Refractory Organic Matters Management in Total Maximum Daily Loads (TMDLs), Journal of Korean Society on Water Environment, 29(3), 393-399. [Korean Literature]
  31. Rhew, D. H. and Yu, S. J. (2015). The Management of Organic Matter in Water Environment, Journal of Environmental Hi- Technology, 46-51. [Korean Literature]
  32. Ryu, J. S., Chang, H. W., and Lee, K. S. (2008). Hydrogeochemistry and isotope goechemistry of the Han River System: A Summary, Journal of the Geological Society of Korea, 44(4), 467-477. [Korean Literature]
  33. Tetra Tech, Inc. (2007). The Environmental Fluid Dynamic Code Theory and Computation Volume 3: Water Qaulity Module, Farrfax Virginia, 9-54.
  34. Thomann, R. V. and Mueller, J. A. (1987). Principles of Surface Water Quality Modeling and Control, Prentice Hall, New Jersey.
  35. Thurman, E. M. (1985). Organic Geochemistry of Natural Water, Dordrecht, The Netherland.
  36. Wetzel, R. G. (1972). The Role of Carbon in Hard Water Marl Lakes. In : G.E. Liken(ed.) Nutrients and eutrophication : The limiting-nutrient controversy, Special Symposium, Limnology Oceanography, 1, 84-97.
  37. Yu, S. J., Kim, C, S., Ha S. R., Hwang, J. Y., and Chae, M. H. (2005). Analysis of Natural Organic Matter(NOM) Characteristics in the Geum River, Journal of Korean Society on Water Environment, 21(2), 125-131. [Korean Literature]