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Hydrologic Regime Alteration Analysis of the Multi-Purpose Dam by Indicators of Hydrologic Alterations

수문변화 지표법에 의한 다목적댐의 유량변화 분석

  • 박봉진 (한국수자원공사 댐.유역관리처 하천유역팀) ;
  • 강기호 (한국수자원공사 수자원관리처 하천유역팀) ;
  • 정관수 (충남대학교 공과대학 토목공학과)
  • Published : 2008.07.31

Abstract

In this study, Hydrologic regime alterations(magnitude, magnitude and duration of annual extreme, frequency and duration of high and low pulse, rate and frequency of water condition changes, Range of Variability Approach) were analyzed by using Indicators of Hydrologic Alterations at the 11 major multi-purpose dam. The analysis result of the magnitude of monthly water conditions during drought season, inflow was $6.38m^3/sec{\sim}39.84m^3/sec$ and outflow was $20.36m^3/sec{\sim}49.43m^3/sec$, was increased $1.84%{\sim}200.98%$. The analysis result of the magnitude of monthly water conditions during flood season, inflow was from $79.06m^3/sec{\sim}137.12m^3/sec$ and outflow was from $65.32m^3/sec{\sim}80.16m^3/sec$, was decreased from $18.19%{\sim}40.39%$. The analysis result of the magnitude and duration of annual extreme, 1-day minimum was increased $82.86%{\sim}2,950%$, but 1-day maximum was decreased $34.78%{\sim}83.96%$. The analysis result of the frequency and duration of high and low pulse, low pulse count was decreased $29.67%{\sim}99.07%$ and high pulse count was also decreased $4.6%{\sim}92.35%$ after dam operation. Hydrograph rise rate was decreased $15.84%{\sim}79.31%$ and fall rate was $1.97%{\sim}107.10%$. RVA of 1-day minimum was increased $0.60{\sim}2.67$, also RVA of 1-day maximum was decreased $0.50{\sim}1.00$.

본 연구에서는 수문변화 지표법을 적용하여 11개 주요 다목적댐의 월 유량 크기, 연 최소.최대유량 크기와 지속기간, 고.저맥파 빈도와 주기, 수문곡선 변화 비율과 빈도를 분석하였다. 월 유량변화 분석 결과, 갈수기에 해당하는 1월부터 6월과 10월부터 12월까지는 유입량이 $6.38m^3/sec{\sim}39.84m^3/sec$이었으나, 방류량은 $20.36m^3/sec{\sim}49.43m^3/sec$$1.84%{\sim}200.98%$가 증가하였다. 우기철인 7월부터 9월까지는 유입량이 $79.06m^3/sec{\sim}137.12m^3/sec$ 이었으나, 방류량은 $65.32m^3/sec{\sim}80.16m^3/sec$$18.19%{\sim}40.39%$가 감소하였다. 연 최소.최대 유량변화 분석 결과는 1일 최소유량이 $82.86%{\sim}2,950%$가 증가하였으며, 연 최소 및 최대 유량변화는 1일 최소유량은 $82.86%{\sim}2,950%$가 증가하였으나, 1일 최대유량은 $34.78%{\sim}83.96%$가 감소하였다. 고.저맥파의 빈도와 주기의 분석 결과, 저맥파의 발생 횟수는 댐 조절후 $29.67%{\sim}99.07%$가 감소하였으며, 고맥파의 발생횟수도 $4.6%{\sim}92.35%$가 감소하였다. 수문곡선 변화 비율과 빈도의 분석 결과 상승률은 $15.84%{\sim}79.31%$가 감소하였으며, 하강율은 $1.97%{\sim}107.10%$가 감소하였다. 유량변화정도 분석 결과는 1일 최소유량은 $0.60{\sim}2.67$ 증가하였으며, 1일 최대 유량은 $0.50{\sim}1.00$으로 감소하였다.

Keywords

References

  1. 김태균, 윤용남, 안재현 (2002). “댐 건설에 따른 하류유황의 변화 분석.” 한국수자원학회논문집, 한국수자원학회, 제35권, 제6호, pp. 807-916
  2. 박봉진, 김준태, 장창래, 정관수 (2008). “수문변화 지표법에 의한 영천댐이 하류하천에 미치는 유황변화 분석.” 한국수자원학회논문집, 한국수자원학회, 제41권, 제2호, pp. 163-172 https://doi.org/10.3741/JKWRA.2008.41.2.163
  3. 윤용남, 박무종 (1993). “댐 건설로 인한 5대수계 본류의 유황변화 분석.” 대한토목학회논문집, 대한토목학회, 제13권, 제3호, pp. 79-91
  4. 이진원, 김형섭, 우효섭 (1993). “댐 건설로 인한 5대수계 본류의 유황변화 분석.” 대한토목학회논문집, 대한토목학회, 제13권, 제3호, PP. 79-91
  5. 한국수자원공사 (2007). 댐운영실무편람
  6. 최성욱, 윤병만, 유효섭, 조강현 (2004). “댐건설에 의한 유황변화에 따른 하류 하도에서 하천지형학적 변화 및 식생피복의 변화 : 황강 합천댐 사례.” 한국수자원학회논문집, 한국수자원학회, 제37권, 제1호, pp. 55-66
  7. Gordon, E., Meentemeyer, R.K. (2006). "Effects of Dam Operation and Land Use on Stream Channel Morphology and Riparian Vegetation." Geomorphology, Vol. 82, pp. 412-429 https://doi.org/10.1016/j.geomorph.2006.06.001
  8. Graf, W. L. (2006) "Downstream Hydrologic and Geomorphic Effects of Large Dams on American Rivers." Geomorphology, Vol. 79, pp. 336-360 https://doi.org/10.1016/j.geomorph.2006.06.022
  9. Jorde, P. E. (2006). "Reservoir Operation and Ecosystem Losses." KICT, The 2nd international Workshop on River Environment, pp. 41-66
  10. Junk, W. J., Baylay, P. B., and Sparks, R. E. (1989). "The Flood Pulse Concept in River Floodplain Systems." Procedure International Large River Symposium, Canada, Special Publication, Fish Aquatic Science, Vol. 106, pp. 110-127
  11. Lajoie, F., Assani, A. A., Roy, A. G., Mesfioui, M. (2007). "Impacts of Dams on Monthly flow Characteristics-the Influence of Watershed Size and Seasons." Journal of hydrology, Vol. 334, pp. 423-439 https://doi.org/10.1016/j.jhydrol.2006.10.019
  12. Magilligan F. J., Nislow K. H. (2005). "Change in Hydrologic Regime by Dams." Geomorphology, Vol. 71, pp. 61-78 https://doi.org/10.1016/j.geomorph.2004.08.017
  13. Magilligan, F. J., Nislow, K. H, Graber, B. E. (2003). "Scale-Independent Assessment of Discharge Reduction and Riparian Disconnectivity Following Flow Regulation by Dam." Geological Society of America, Vol. 31, No. 7, pp. 569-572
  14. Nature Conservancy (2007). Indicators of Hydrologic Alteration Version 7 User's Manual
  15. Olden, J. D., Poff, N. L. (2003). "Redundancy and the Choice of Hydrologic Indices for Characterizing Streamflow Regimes." River Research and Applications, Vol. 19, pp. 101-121 https://doi.org/10.1002/rra.700
  16. Poff, N. L., Allan, J. D., Bain, M. B., Karr, J. R., Prestegaard, K. L., Ricther, B. D., Sparks, R. E., Stromverg, J. C. (1997). "The Natural Flow Regime : A Paradigm for River Conservation and Restoration." Bioscience, Vol. 47, No. 11, pp. 769-784 https://doi.org/10.2307/1313099
  17. Poff, N. L., Olden, J. D., Merritt, D. M., Pepin, D. M. (2007). "Homogenization of Regional River Dynamics by Dams and Global Biodiversity Implications." PNAS, Vol. 104, No. 14
  18. Poff, N. L., Olden, J. D., Pepin D. M., Bledsoe, B. P. (2006). "Placing Global Stream Flow Variability in Geographic and Geomorphic Contexts." River Research and Applications, Vol. 22, pp. 149-166 https://doi.org/10.1002/rra.902
  19. Richard, A. M., Mills, J. D., Wrazien, D. R., Bassett, B., Splinter, D. K. (2005). "Effects of jacjson Lake Dam on the Snake River and its floodplain Grand Teton National Park, Wyoming, USA." Geomorphology, No. 71, pp. 79-98 https://doi.org/10.1016/j.geomorph.2005.03.005
  20. Richter, B. D., Baumgartner, Braun D. P., Powell J. (1998). "A Spatial Assessment of Hydrologic Alteration within a River Network." Regulated Rivers:Research & Management, No. 14, pp. 329-340
  21. Richther, B. D., Baumgartner, J. F., Powell, J., Braun, D. P. (1996). "A Method for Assessing Hydrologic Alterations within Ecosystems." Conservation Biology, Vol. 10, No. 4, pp. 1163-1174 https://doi.org/10.1046/j.1523-1739.1996.10041163.x
  22. Richter, B. D., Baumhartner, J. V., Wigington, B., Braun, D. P. (1997). "How Much Water Does a river Need ?" Freshwater Biology, Special Applied Issues Section, No. 37, pp. 231-249
  23. Shiau, J. T., Wu, F. C. (2004). "Feasible Diversion and Instream Flow Release Using Range of Variability Approach." Journal of Water Resources Planning and Management, Vol. 130, No. 5, pp. 395-404 https://doi.org/10.1061/(ASCE)0733-9496(2004)130:5(395)
  24. Williams, G. P., Wolman, M. G. (1984). "Downstream Effects of Dams on Alluvial Rivers." U.S. Geology Survey Professional Paper 1286. pp. 1-83

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