• Title/Summary/Keyword: Rainfall-Runoff model calibration

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Development of Calibration Equation Considering Uncertainty of Rainfall-Runoff Model (강우-유출 모형의 불확실성을 고려한 확률홍수량의 보정식 개발)

  • Chae, Byung-Seok;Park, Dong-Hyeok;Lee, Jin-Young;Kim, Tae-Woong
    • Proceedings of the Korea Water Resources Association Conference
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    • 2017.05a
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    • pp.396-396
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    • 2017
  • 최근 기후변화에 효과적으로 대응하기 위해서 신뢰성 높은 설계홍수량을 산정할 필요성이 커지고 있다. 설계홍수량 산정법은 홍수빈도해석법과 설계강우법으로 대별된다. 홍수빈도해석법은 홍수량 자료에 대한 통계학적 빈도분석을 실시하여 확률홍수량을 산정하는 방법이다. 홍수빈도해석법은 관측된 자료를 활용하기 때문에 이론적으로 불확실성이 상대적으로 작은 장점을 가지고 있지만, 자료의 수가 적거나 시간에 따라 변하는 유역특성에 대한 불확실성을 함께 고려해야 한다. 관측 유량 자료가 없거나 적은 유역에서는 설계강우법이 주로 사용되고 있다. 설계강우법은 강우자료에 대해서 빈도분석을 실시하여 확률강우량을 산정한 후, 이를 강우-유출 모형에 적용하여 확률 홍수 수문곡선을 작성하고 첨두치를 확률홍수량으로 선정하는 방법이다. 그러나, 설계강우법도 강우-유출 모형에서 유역특성을 나타내는 매개변수 추정과정에서 불확실성을 내포하고 있기 때문에 추정된 홍수량 결과에 대한 불확실성을 감안해야 한다. 또한, 강우량과 홍수량의 발생빈도가 같다는 가정의 명확한 근거가 없다. 더욱이 두 가지 설계홍수량 산정법을 같은 유역에 적용하는 경우라도 종종 매우 다른 결과값을 나타낸다. 따라서, 본 연구에서는 국내 유역의 현실을 고려하여 설계강우법으로 산정된 확률홍수량을 홍수빈도해석법으로 산정된 확률홍수량을 변환할 수 있는 보정식을 개발하였다. 국내 9개의 댐 유역에서 확보된 일 단위 강우량 및 유출량 자료를 홍수빈도해석법과 설계강우법을 적용하여 대상 유역의 설계홍수량을 산정하였다. 그리고, 홍수빈도해석법으로 산정된 설계홍수량을 참값이라 가정한 후, 산정된 설계홍수량의 대상 유역별 오차율을 산정하였다. 이를 바탕으로 홍수빈도해석법과 설계강우법으로 산정된 설계홍수량 간의 관계를 회귀분석을 통하여 설계강우법으로 산정된 확률홍수량을 보정하는 관계식을 제시하였다.

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Identification of yearly variation in Hwacheon dam inflow using trend analysis and hydrological sensitivity method (경향성 분석과 수문학적 민감도 기법을 이용한 화천댐 유입량의 연별 변동량 규명)

  • Kim, Sang Ug;Lee, Cheol-Eung
    • Journal of Korea Water Resources Association
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    • v.51 no.5
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    • pp.425-438
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    • 2018
  • Existing studies that analyze the causes and effects of water circulation use mostly rainfall - runoff models, which requires much effort in model development, calibration and verification. In this study, hydrological sensitivity analysis which can separate quantitatively the impacts by natural factors and anthropogenic factor was applied to the Hwacheon dam upper basin from 1967 to 2017. As a result of using various variable change point detection methods, 1999 was detected as a statistically significant change point. Especially, based on the hydrological sensitivity analysis using 5 Budyko based functions, it was estimated that the average inflow reduction amount by Imnam dam construction was $1.890\;billion\;m^3/year$. This results in this study was slightly larger than the those by existing researchers due to increase of rainfall and decrease of Hwacheon dam inflow. In future, it was suggested that effective water management measures were needed to resolve theses problems. Especially, it can be suggested that the monthly or seasonal analysis should be performed and also the prediction of discharge for future climate change should be considered to establish resonable measures.

Study on Climate Change Impacts on Hydrological Response using a SWAT model in the Xe Bang Fai River Basin, Lao People's Democratic Republic (기후변화에 따른 라오스인민공화국의 시방파이 유역의 수문현상 예측에 대한 연구: SWAT 모델을 이용하여)

  • Phomsouvanh, Virasith;Phetpaseuth, Vannaphone;Park, Soo Jin
    • Journal of the Korean Geographical Society
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    • v.51 no.6
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    • pp.779-797
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    • 2016
  • A calibrated hydrological model is a useful tool for quantifying the impacts of the climate variations and land use/land cover changes on sediment load, water quality and runoff. In the rainy season each year, the Xe Bang Fai river basin is provisionally flooded because of typhoons, the frequency and intensity of which are sensitive to ongoing climate change. Severe heavy rainfall has continuously occurred in this basin area, often causing severe floods at downstream of the Xe Bang Fai river basin. The main purpose of this study is to investigate the climate change impact on river discharge using a Soil and Water Assessment Tool (SWAT) model based on future climate change scenarios. In this study, the simulation of hydrological river discharge is used by SWAT model, covering a total area of $10,064km^2$ in the central part of country. The hydrological model (baseline) is calibrated and validated for two periods: 2001-2005 and 2006-2010, respectively. The monthly simulation outcomes during the calibration and validation model are good results with $R^2$ > 0.9 and ENS > 0.9. Because of ongoing climate change, three climate models (IPSL CM5A-MR 2030, GISS E2-R-CC 2030 and GFDL CM3 2030) indicate that the rainfall in this area is likely to increase up to 10% during the summer monsoon season in the near future, year 2030. As a result of these precipitation increases, the SWAT model predicts rainy season (Jul-Aug-Sep) river discharge at the Xebangfai@bridge station will be about $800m^3/s$ larger than the present. This calibrated model is expected to contribute for preventing flood disaster risk and sustainable development of Laos

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Temporal and Spatial Characteristics of Sediment Yields from the Chungju Dam Upstream Watershed (충주댐 상류유역의 유사 발생에 대한 시공간적인 특성)

  • Kim, Chul-Gyum;Lee, Jeong-Eun;Kim, Nam-Won
    • Journal of Korea Water Resources Association
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    • v.40 no.11
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    • pp.887-898
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    • 2007
  • A physically based semi-distributed model, SWAT was applied to the Chungju Dam upstream watershed in order to investigate the spatial and temporal characteristics of watershed sediment yields. For this, general features of the SWAT and sediment simulation algorithm within the model were described briefly, and watershed sediment modeling system was constructed after calibration and validation of parameters related to the runoff and sediment. With this modeling system, temporal and spatial variation of soil loss and sediment yields according to watershed scales, land uses, and reaches was analyzed. Sediment yield rates with drainage areas resulted in $0.5{\sim}0.6ton/ha/yr$ excluding some upstream sub-watersheds and showed around 0.51 ton/ha/yr above the areas of $1,000km^2$. Annual average soil loss according to land use represented the higher values in upland areas, but relatively lower in paddy and forest areas which were similar to the previous results from other researchers. Among the upstream reaches, Pyeongchanggang and Jucheongang showed higher sediment yields which was thought to be caused by larger area and higher fraction of upland than other upstream sub-areas. Monthly sediment yields at the main outlet showed same trend with seasonal rainfall distribution, that is, approximately 62% of annual yield was generated during July to August and the amount was about 208 ton/yr. From the results, we could obtain the uniform value of sediment yield rate and could roughly evaluate the effect of soil loss with land uses, and also could analyze the temporal and spatial characteristics of sediment yields from each reach and monthly variation for the Chungju Dam upstream watershed.