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BASINS-SWAT 모델을 이용한 경안천 유역의 비점원 오염배출 중점관리 대상지역 결정

Decision of Critical Area Due to NPS Pollutant Loadings from Kyongan Stream Watershed using BASINS-SWAT

  • 발행 : 2009.09.30

초록

In order to improve water quality of upper watershed of Paldang reservoir, it is necessary to evaluate non-point source pollution loads and identify critical watershed pollution sources. A GIS based Soil and Water Assessment Tool was applied to evaluate model application and reliability, estimate NPS pollution load, identify critical watershed by NPS pollution sources, and suggest various best management practices for Kyongan Stream watershed. Yearly NPS pollution loads were estimated 30.0% SS, 60.1% TN and 35.4% TP, respectably. The watershed pollution load is mainly decided by precipitation condition and SS and nutrients load have a significant regression relationship. Based on 10-year average yearly NPS pollution load, critical sub-watersheds were identified. The No. 5 and 17 which have lots of relatively intensive agricultural fields and scattered industrial area were vary critical sub-watersheds and under more intensive pollution load. In order to control critical watershed, watershed best management practices such as scientific fertilizer, contour farming and parallel terrace, transferring the sloppy farmland to grass or forest and constructing a buffer zone, and constructing wetlands and retention ponds will be applied. Overall the SWAT model can be efficiently used for identification of critical sub-watersheds in order to develop a priority watershed management plan to reduce water pollutions.

키워드

참고문헌

  1. Arnold, J. G., R. S. Muttiah, R. Srinivasan, and P. M. Allen, 2000. Regional estimation of base flow and groundwater recharge in the Upper Mississippi river basin. Journal of Hydrology 227: 21-40 https://doi.org/10.1016/S0022-1694(99)00139-0
  2. Arnold, J. G., R. Srinivasan, R. S. Muttiah, and J. R. Williams, 1998. Large area hydrologic modeling. American Water Resources Association 34(1): 73-89 https://doi.org/10.1111/j.1752-1688.1998.tb05961.x
  3. ASCE, 1993. ASCE task committee on definition of criteria for evaluation of watershed models, Criteria for Evaluation of Watershed Models. Irrigation Drainage Engineering 119(3): 429-442 https://doi.org/10.1061/(ASCE)0733-9437(1993)119:3(429)
  4. Bryant, R. B., W. J. Gburek, and T. L. Veith, 2006. Perspectives on the potential for hydropedology to improve watershed modeling of phosphorus loss. Geoderma 131: 299-307 https://doi.org/10.1016/j.geoderma.2005.03.011
  5. Choi, J. H., J. H. Ha and S. S. Park, 2008. Estimation of the Effect of Water Quality Management Policy in Paldang Lake. Korean Society of Environmental Engineers 30(12): 1225-1230 (in Korean)
  6. Donigian, Jr. A. S., 2000. HSPF Training Workshop Handbook and CD. Lecture #19. Calibration and Verification Issues, Slide #L19-22. EPA Headquarters, Washington Information Center, 10-14 January, 2000. Presented and prepared for U.S. EPA, Office of Water, Office of Science and Technology, Washington, D.C
  7. Han, H. J. and S. S. Park, 2004. A study on determination of an optimum riparian buffer zone based on analytical hierarchy process. Korean Society on Water Quality 20(6): 555-562 (in Korean)
  8. Han River Basin Environmental Office, 2007. Water environmental management plans for the middle network of the Kyongan Stream (2008-2012) (in Korean)
  9. Jang, J. H., C. G. Yoon, K. W. Jung, and S. B. Lee, 2009a. Characteristics of pollution loading from Kyongan stream watershed by BASINS/SWAT. Korean Society of Limnology 42(2): 200-211 (in Korea)
  10. Jang, J. H., C. G. Yoon, K. W. Jung, and H. C. Kim, 2009b. Evaluation of the Impacts of Water Quality Management in Kyongan Stream Watershed with SWAT. Korean Society on Water Quality (in Korean), (under examination)
  11. Jang, J. H., H. C. Kim, S. B. Lee, S. J. Lee, and A. H. S, 2007. Estimation by Assessing the Load Reduction Scenarios in Kyungan Stream Basin. Autumn Conference of combined Korean Society on Water Quality and Korean Society of Water and Wastewater in 2007, 737-744 (in Korean)
  12. Kardis, M., L. Ignatiades, and N. Moschopoulou, 1983. An index associated with nutrient eutrophication in the marine environment. Estuarine. Coastal and Shelf Science 16: 339-334 https://doi.org/10.1016/0272-7714(83)90151-8
  13. Kim, H. S., S. W. Lee, D. H. Rhew, and D. S. Kong, 2009. The effect of discharge loading at sewage treatment plants on water quality in Kyongan stream. Korean Society on Water Quality 25(3): 452-458 (in Korean)
  14. Kim, S. S., J. S. Kim, K. Y. Bang, E. M. Gwon, and W. J. Chung, 2002. The Estimation of the unit load and chracteristics of non-point source discharge according to rainfall in Kyongan watershed. Korean Society of Environmental Engineers 24(11): 2019- 2027 (in Korean)
  15. Lee, B. S., Y. J. Jung, M. J. Park, and K. I. Gil, 2008. A study on the discharge characteristics of non-point pollutant source in the agricultural area of the Kyongan watershed. Korean Society on Water Quality 24(2): 169-173 (in Korean)
  16. Meybeck, M., G. Friedrich, R. Thomas, and D. Chapman, 1992. Rivers. Water Quality Assessments, Chapman, D. (ed), Chapman and Hall, London
  17. Miller, S. N., D. J. Semmens, and D. C. Goodrich, 2007. The automated geospatial watershed assessment tool. Environmental Modeling Software, 22: 365-377 https://doi.org/10.1016/j.envsoft.2005.12.004
  18. MOE, 2008. Construction, Operation, and Maintenance Manual for Non-point Source Control Facility (in Korean)
  19. MOE, 2003. Water environmental management plans, 'Pollution load classified by network and pollution source' (in Korean)
  20. Nash, J. E., and J. V. Sutcliffe, 1970. Riverflow forecasting through conceptual model. Journal of Hydrology 10(3): 282-290 https://doi.org/10.1016/0022-1694(70)90255-6
  21. NAAS, 2000. 1:25,000 detailed soil map. Http://asis.rda.go.kr Accessed 3 Jan. 2009 (in Korean)
  22. Neitsch, S. L., J. G. Arnold, J. R. Kiniry, R. Srinivasan, and J. R. Williams, 2002. Soil and Water Assessment Tool User Manual (Version 2000). Http:// www.brcc.tamus.edu/swat. Accessed 25 Jun. 2009
  23. Ouyang, W., F. H. Hao, and X. L. Wang, 2008. Regional Non point Source Organic Pollution Modeling and Critical Area Identification for Watershed Best Environmental Management. Water Air Soil Pollutan 187: 251-261 https://doi.org/10.1007/s11270-007-9513-y
  24. Rim, C. S., J. K. Shin and K. J. Cho, 2000. The trend and assessment of water pollution from midstream to downstream of the Kum River. Korean Society of Limnology 33(1): 51-60 (in Korean)
  25. Santhi, C., R. Srinivasan, J. G. Arnold, and J. R. Williams, 2006. A modeling approach to evaluate the impacts of water quality management plans implemented in a watershed in Texas. Environmental Modelling & Software 21: 1141-1157 https://doi.org/10.1016/j.envsoft.2005.05.013
  26. Shin, Y. K., 2004. Comparison of water quality between forested and agricultural subcatchments in Daewallyong area. Korean Geographical Society 39(4): 544-561 (in Korean)
  27. Shrestha, S. and F. Kazama, 2007. Assessment of surface water quality using multivariate statistical techniques: A case study of the Fuji river basin, Japan. Environmental modelling Software 22: 464-475 https://doi.org/10.1016/j.envsoft.2006.02.001
  28. Yang, H. M. and H. Kim, 2001. Calculation of pollutant loadings from stream watershed using digital elevation model and pollutant load unit factors. Korean Institute of Landscape Architecture 29(1): 22-31 (in Korean)
  29. Yi, D. S. and K. S. Park, 2004. Status of water pollution of Gyeongan River, Korea. Korean Society on Water Quality 20(6): 698-702 (in Korean)

피인용 문헌

  1. Prioritization of Control Areas using Vulnerable Areas by Non-point Source Pollution vol.56, pp.6, 2014, https://doi.org/10.5389/KSAE.2014.56.6.011