• Title/Summary/Keyword: Runoff Curve Number

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Study on Improved Method for Calculating Runoff Coefficient of Rational Method (합리식의 유출계수(C) 산정방법의 개선에 관한 연구)

  • Lee, Young-Dai;Kim, Jong-Soon;Kim, Young-Teak
    • Journal of the Korean Society of Hazard Mitigation
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    • v.7 no.4
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    • pp.67-74
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    • 2007
  • Rational method has been widely used to calculate peak runoff drainage design or small watershed because of simplicity and convenience. Runoff coefficient(C) is the most important parameter in the rational method which varies according to rainfall intensity, return period, rainfall duration time and soil characteristics. In practice, constant which is value of C in rational formula has been used from the table, originally based on ASCE. These table value does not consider the upper conditions of the depending factors, hence peak runoff calculation could be in correct. Therefore to calculate C in this paper we have devised an improved formula, considering relationship with rainfall duration, return period and CN of NRCS method. This formula is considered to be more reliable and helpful to the hydrologists and engineers to predict correct peak runoff.

Uncertainty Assessment of Single Event Rainfall-Runoff Model Using Bayesian Model (Bayesian 모형을 이용한 단일사상 강우-유출 모형의 불확실성 분석)

  • Kwon, Hyun-Han;Kim, Jang-Gyeong;Lee, Jong-Seok;Na, Bong-Kil
    • Journal of Korea Water Resources Association
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    • v.45 no.5
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    • pp.505-516
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    • 2012
  • The study applies a hydrologic simulation model, HEC-1 developed by Hydrologic Engineering Center to Daecheong dam watershed for modeling hourly inflows of Daecheong dam. Although the HEC-1 model provides an automatic optimization technique for some of the parameters, the built-in optimization model is not sufficient in estimating reliable parameters. In particular, the optimization model often fails to estimate the parameters when a large number of parameters exist. In this regard, a main objective of this study is to develop Bayesian Markov Chain Monte Carlo simulation based HEC-1 model (BHEC-1). The Clark IUH method for transformation of precipitation excess to runoff and the soil conservation service runoff curve method for abstractions were used in Bayesian Monte Carlo simulation. Simulations of runoff at the Daecheong station in the HEC-1 model under Bayesian optimization scheme allow the posterior probability distributions of the hydrograph thus providing uncertainties in rainfall-runoff process. The proposed model showed a powerful performance in terms of estimating model parameters and deriving full uncertainties so that the model can be applied to various hydrologic problems such as frequency curve derivation, dam risk analysis and climate change study.

A Study on the Computation of Curve Number Using GIS (GIS를 이용한 CN 산정에 관한 연구)

  • Cho, Yong-Jae;Park, Sang-Ju;Jeong, In-Ju;Kim, Sang-Yong
    • Journal of Korean Society for Geospatial Information Science
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    • v.11 no.3 s.26
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    • pp.47-53
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    • 2003
  • Recently, there is studying about slope analysis according to cell size and affect in conformity to determination of hydrologic topographical parameters the cell size a classified map scale about subwatershed. In this study, we wish to offer the base data to determination of hydrologic topographical parameters request of runoff model analysis in this basin on the basis of this results that we compute the CN(curve number) using GIS after classify the map of soil and landuse on the Su-Young River basin. Also, as determination a classified cell size of $100m{\times}100m$ in case of the most optimum size.

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Object-oriented Prototype Framework For Tightly Coupled GIS-based Hydrologic Modeling (객체지향성 프로그래밍 방법을 통한 GIS 연계의 수문모델)

  • Kang, Kwang-Min;Rim, Chang-Soo;Yoon, Sei-Eui
    • Journal of Korea Water Resources Association
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    • v.45 no.6
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    • pp.597-606
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    • 2012
  • With the availability of multi-scale hydrologic data in public domain depending on DEM size, there is a need for a modeling framework that is capable of using these data to simulate hydrologic processes at multiple scales for different topographic and climate conditions for distributed hydrologic model. To address this need, an object-oriented approach, called Geographic and Hydrologic Information System Modeling Objects (GHISMO), is developed. Main hydrologic approaches in GHISMO are storage-release for direct runoff and SCS curve number method for infiltration part. This paper presents conceptual and structural framework of storage-release concept including its application to two watersheds will be presented.

Evaluation of L-THIA Direct Runoff Estimation Effect with Slope-based Curve Number Calibration (경사도에 따른 CN보정으로 L-THIA 직접유출 모의 영향 평가)

  • Kim, Jong-Gun;Lim, Kyoung-Jae;Park, Youn-Shik;Heo, Sung-Gu;Park, Joon-Ho;Ahn, Jae-Hun;Kim, Ki-Sung;Choi, Joong-Dae
    • Proceedings of the Korea Water Resources Association Conference
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    • 2007.05a
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    • pp.1558-1562
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    • 2007
  • 우리나라 지형은 전체의 70%가 산지로 이루어져 있다. 특히 강원도 지역과 같이 산지가 대부분인 지역에서는 경사도에 따라 강우에 의한 유출특성이 크게 달라질 수 있으므로 지형의 경사가 고려된 유출량 산정방식이 필요하다. 현재 유출량 산정 방식에 많이 이용되고 있는 SCS의 CN값은 미국의 중서부 지역과 같이 경사도 5%미만인 지역에서의 유출량 산정에 적합한 유출곡선지수이다. 경사도 5%에서 유출량 산정에 적합한 CN값을 우리나라의 강원도 지형과 같이 복잡하고 경사도가 심한 지역에 적용하기에는 부적합하다. 따라서 본 연구에서는 연구대상지역인 도암댐 유역의 평균 25.8% 경사도를 고려한 직접유출량을 산정하여 기존 평균 경사도 5%일 때의 직접유출량과 비교분석하였다. 본 연구의 비교분석에 있어서 직접유출의 모의가 가능한 Long-Term Hydrologic Impact Assessment (L-THIA) ArcView GIS 모델을 사용하였고 모델의 적용성 평가를 위해 수문분석에 사용되고 있는 WHAT 모듈을 이용하여 분리된 직접유출과 비교하였다. 그 결과 유출량 산정을 위해 CN값 산정시 강원도 지형과 같이 지형이 복잡하고 경사가 심한 지형에 있어서는 유역의 경사도를 고려하여 유출을 모의해야 한다는 것을 알 수 있다.

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A Study of Curve Number Regression Equation for Bocheong Stream (보청천 유역의 유출곡선지수 회귀식에 관한 연구)

  • Kwak, Jae-Won;Kim, Soo-Jun;Joo, Hong-Jun;Kim, Hung-Soo
    • Proceedings of the Korea Water Resources Association Conference
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    • 2010.05a
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    • pp.576-580
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    • 2010
  • NRCS의 유출곡선지수 산정법(CN; Runoff Curve Number method)은 유역내의 토지 이용 및 토지 피복, 토양특성, 수문학적 조건 등을 이용하여 총 강우량으로부터 유효 유출량을 계산하는 방법으로서 이론의 간편성과 적용성으로 인하여 여러 분야에 적용되고 있다. 그러나, 유출곡선지수의 특성상 지역적인 특성에 따라 차이가 발생할 수 밖에 없음에도 국내에서는 대부분 미국 NEH(National Engineering Handbook)에서 제시한 기준을 이용하고 있는 실정이다. 이에 대하여 본 연구에서는 국내 유역의 강우-유출 특성을 반영한 유출곡선지수를 산정하고 강우에 따른 직접 유출량을 모의하기 위한 방법을 연구하였다. 이를 위하여 보청천 유역의 관측 강우-유출 자료에 Hawkins et al(1993)등이 제시한 점근 유출곡선지수방법을 적용하고 이를 국가수자원관리종합정보시스템(WAMIS)에서 제시한 값과 비교하였다. 또한 유역의 대표 유출곡선지수에 대한 회귀식을 유도하고 이를 이용하여 보청천 유역의 하계 유출을 모의하고 그 결과를 비교 분석 하였다. 연구결과 대표 유출곡선지수식을 이용한 유역의 직접유출 모의결과가 단일 유출곡선지수시의 모의결과보다 더 우수한 결과를 나타내었다.

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Estimation of Direct Runoff Variation According to Land Use Changes in Jeju Island (제주도 토지이용변화에 따른 직접유출량 변화 추정)

  • Ha, Kyoo-Chul;Park, Won-Bae;Moon, Deok-Cheol
    • Economic and Environmental Geology
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    • v.42 no.4
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    • pp.343-356
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    • 2009
  • SCS method was applied to make the assessments of direct runoff according to land use changes in Jeju island. Land uses were obtained from 5 year-period remote sensing time series data from 1975 to 2000 which are provided by Water Management Information System (WAMIS). Hydrologic soil groups were categorized based on soil series of National Academy of Agricultural Sciences (NAAS), and permeable geologic structures such as Sumgol, Gotzawal and so on. The land uses of Jeju island are obviously characterized by urban-agricultural areas increases, and forest areas decrease. According to land use changes, curve number (CN) for Jeju island was consistently increased from 65.3 in 1975 to 69.6 in 2000. From 1975 to 2000, the amount of direct runoff and ratios increased due to CN changes. When the rainfall data in 1995 was applied to each year, the direct runoff amounts were $299.0{\sim}351.6\;mm$, and runoff ratios were $15.1{\sim}17.7%$. In the case of the application of the rainfall data in 2000, the direct runoff amounts were $136.9{\sim}161.5\;mm$, and runoff ratios were $9.7{\sim}11.5%$. Since direct runoff can be closely related to groundwater recharge and sustainable groundwater yield, the groundwater influence caused by land use changes or district exploitations should be considered for the reasonable water management and development in Jeju island.

A Study on the Calculation of Runoff Discharge in the Ohown river Basin Using the GIS Data and Hydrology Model (수문모형(HMS)과 GIS자료를 이용한 오원천 유역의 유출량 산정에 관한 연구)

  • 김운중;정남선;김경수
    • The Journal of Engineering Geology
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    • v.10 no.3
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    • pp.263-272
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    • 2000
  • The main objective of this study is to simulate the rainfall-runoff relationship of the Ohwon rivet basin. For the this study, we used GIS technique and HMS(Hydrological Modeling System). In this study, watershed itself and geometric factors of watershed are extracted from DEM by using a GIS technique. The scanned data of topographical map with scale of 1:50,000 in the Ohwon river basin is used to this study and it is converted to DEM data. The parameters of Hydrological Modeling System as watershed area(A), river length, SCS Curve Number(CN) etc. are extracted by using the GIS technique in the Ohwon Basin. Extracted parameters are applied to the Hydrological Model System, then the paramenters optimized by the observed data and rainfall data. Then, the optimized parameters and Hydrological Modeling System are applied to the study area for the simulation of rainfall-runoff relationship. With the resultn of this study, GIS technique is useful to the extraction of watershed characteristics factors and Hydrological Modeling System is successful to the simulation of rainfall-runoff relationship.

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Spatial Analysis of Nonpoint Source Pollutant Loading from the Imha dam Watershed using L-THIA (L-THIA를 이용한 낙동강수계 임하댐유역 비점오염원의 공간적 분포해석)

  • Jeon, Ji-Hong;Cha, Daniel K.;Choi, Donghyuk;Kim, Tae-Dong
    • Journal of The Korean Society of Agricultural Engineers
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    • v.55 no.1
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    • pp.17-29
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    • 2013
  • Long-Term Hydrologic Impact Assessment (L-THIA) model which is a distributed watershed model was applied to analyze the spatial distribution of surface runoff and nonpoint source pollutant loading from Imha watershed during 2001~2010. L-THIA CN Calibration Tool linked with SCE-UA was developed to calibrate surface runoff automatically. Calibration (2001~2005) and validation (2006~2010) of monthly surface runoff were represented as 'very good' model performance showing 0.91 for calibration and 0.89 for validation as Nash-Sutcliffe (NS) values. Average annual surface runoff from Imha watershed was 218.4 mm and Banbyun subwatershed was much more than other watersheds due to poor hydrologic condition. Average annual nonpoint source pollutant loading from Imha wateshed were 2,295 ton/year for $BOD_5$, 14,752 ton/year for SS, 358 ton/year for T-N, and 79 ton/year for T-P. Amount of pollutant loading and pollutant loading rates from Banbyun watershed were much higher than other watersheds. As results of analysis of loading rate from grid size ($30m{\times}30m$), most of high 10 % of loading rate were generated from upland. Therefore, major hot spot area to manage nonpoint source pollution in Imha watershed is the combination of upland and Banbyun subwatershed. L-THIA model is easy to use and prepare input file and useful tool to manage nonpoint source pollution at screening level.

Revised AMC for the Application of SCS Method: 1. Review of SCS Method and Problems in Its Application (SCS 방법 적용을 위한 선행토양함수조건의 재설정: 1. SCS 방법 검토 및 적용상 문제점)

  • Park, Cheong-Hoon;Yoo, Chul-Sang;Kim, Joong-Hoon
    • Journal of Korea Water Resources Association
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    • v.38 no.11
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    • pp.955-962
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    • 2005
  • Even though the runoff volume is very sensitive to the antecedent soil moisture condition (AMC), the general rainfall-runoff analysis in Korea has accepted, without careful consideration of its applicability, the AMC classification of the Soil Conservation Service (SCS, 1972). In this study, by following the development procedure of SCS Curve Number (CN), the rainfall-runoff characteristics of the Jangpyung subbasin of the Pyungchang River Basin were analyzed to estimate the CN and evaluate the AMC classification of currently being used. As results, CN(I), CN(II), and CN(III) were estimated to be 72.1, 79.3, and 76.7, respectively. Among them CN(II) was found to be similar to the other reports but the other two were totally different from those of theoretically estimated. However, it is difficult to evaluate the AMC with CN, rather the frequency of each AMC could be a better indicator for its validity. This study developed the histogram of AMC and compared the frequency of each AMC. hs results we found that the criterion for AMC-III should be increased, Hut that for AMC-I decreased.