The determination of soil parameters is important in predicting the simulated surface runoff using either a distributed or a lumped rainfall-runoff model. Soil characteristics can be collected using remote sensing techniques and represented as a digital map. There is no universal agreement with respect to the determination of a representative parameter from a gridded digital map. Two representative methods, i.e., arithmetic and predominant, are introduced and applied to both FLO-2D and HEC-HMS to improve the model’s accuracy. Both methods are implemented in the Yongdam catchment, and the results show that the former seems to be more accurate than the latter in the test site. This is attributed to the high conductivity of the dominant soil class, which is A type.
The determination of soil characteristics is important in the simulation of rainfall runoff using a distributed FLO-2D model in catchment analysis. Digital maps acquired using remote sensing techniques have been widely used in modern hydrology. However, the determination of a representative parameter with spatial scaling mismatch is difficult. In this investigation, the FLO-2D rainfall-runoff model is utilized in the Yongdam catchment to test sensitivity based on three different methods (mosaic, arithmetic, and predominant) that describe soil surface characteristics in real systems. The results show that the mosaic method is costly, but provides a reasonably realistic description and exhibits superior performance compared to other methods in terms of both the amount and time to peak flow.
Recently IPCC (International Panel on Climate Change, 2007) pointed out that global warming is a certain ongoing process on the earth, due to which water resources management is becoming one of the most difficult tasks with the frequent occurrences of extreme floods and droughts. In this study we made runoff predictions for several control points in the Geum River by using the watershed runoff model, SSARR (Streamflow Synthesis and Reservoir Regulation Model), with daily RCP 4.5 and RCP 8.5 scenarios for 100 year from 1st Jan 2006 to 31st Dec 2100 at the resolution of 1 km given by Climate Change Information Center. As a result of, the Geum River Basin is predicted to be a constant flow increases, and it showed a variation in the water circulation system. Thus, it was found that the different seasonality occurred.
This study evaluated the effect of water level of water resources on water quality in Ulsan. Two reservoirs, Sayeon Dam and Hoeya Dam, were selected and water quality of chemical oxygen demand (COD), total nitrogen (TN) and total phosphorus (TP) were analyzed from 2012 to 2014. And the characteristics of precipitation were also analyzed for 70 years (1945~2014) because runoff of non-point pollutant was strongly affected by precipitation. As a result, water deterioration of Sayeon Dam and Hoeya Dam were affected in accordance with lowering water level. For example, the concentrations of COD and TN was negatively correlated with the water level when the water level of Sayeon Dam was gradually decreased in 2013. The TN concentration was increased to 1.432 mg/L from 0.875 mg/L while the lowest water level of Sayeon Dam was recorded 45 m in 2014. Additionally the concentration of COD and TN was sensitively increased with 0.213 mg/L/m and 0.058 mg/L/m on account of non-point pollutant runoff. It is indicated that hereafter a control of non-point pollutant runoff is the critical factors to maintain water resources because the contribution of non-point pollutant is expected to increase due to the frequent heavy rain events. Therefore, it is necessary to map out a specific plan for non-point pollutant control based on analyses of runoff characteristics, water pollution sources and reduction plans in water pollutants and to establish a water modelling and database system as a preventive action plan.
강우가 지표면에 강하하여 일부는 지표를 따라 유출되고 나머지는 손실이 된다. 손실 중에는 일부는 증발이 되고 일부는 토양으로 침투가 된다. 이러한 수문사상의 변화를 분석하기 위해서는 유역의 토양 및 토지이용상태를 내포하고 있는 GIS정보를 입력하는 것 뿐 만아니라 토양의 함유수분에 따른 선행강우를 고려하여야 한다. 토양의 함유수분은 선행강우에 의해 유역의 토양이 포화됨으로써 강우-유출 분석에 영향을 미친다.
기후변화는 유역의 수문과정에 영향을 줄 수 있으며, 최적의 수자원 관리를 위해서는 이와 같은 기후변화로 인한 수환경 영향을 예측 및 분석하기 위한 통합적인 모의체계의 구축이 필요하다. 본 연구에서는 낙동강 수계의 남강댐 유역을 대상지역으로 선정하여, 기후변화 취약성을 평가하기 위하여 SWAT 모형을 이용하여 유출량 변화를 예측하였다. 기후시나리오 생산을 위하여 지역기후모형(RCM)의 분석 및 인공신경망을 통한 상세화기법을 적용하여 예측인자들에 대한 모의결과로부터 미래 기상자료를 구축하였다. 또한 강우의 경우 총량에 대한 보정을 위해 분위사상법을 적용하였다. 이와 같은 시나리오를 검보정이 완료된 SWAT 모형에 적용하여 기후변화에 따른 유출량 변화를 예측하였다. 본 연구의 결과를 이용하여 기후변화에 대한 효율적인 대책을 제시하여 최적의 수자원관리방안을 도출할 수 있을 것으로 판단된다.
기후변화에 따른 지역적 영향인 기온 상승과 강수량 변화로 인한 수자원 변화 특성을 파악하기 위하여 기상청(KMA)으로부터 전국 59개 관측지점에 대해서 1973년부터 2009년까지 강수량 및 기온자료를 이용하여 산정한 강수효율자료와 국가수자원관리종합시스템(WAMIS)으로부터 1966년부터 2007년까지 PRMS 모의 유출량 자료를 수집, 분석하였다. 분석결과, 전반적으로 강수효율의 거동은 강수량의 변화 특성을 따르나 지역적으로 강수량이 증가함에도 불구하
본 연구는 안성천의 평택수위관측소 상류유역을 대상으로 점진적인 도시화로 인한 토지피복변화가 수문변화에 미치는 영향을 분석하고자 하였다. 이를 위해 1986년과 1999년 Landsat TM 영상을 사용하여 최우도법에 의해 토지피복도를 작성하였으며, 토지이용의 변화에 따른 하천유출량의 정량적 변화를 모의하기 위해서는 격자기반의 분포형 강우유출모형인 KIMSTORM모형(김성준 등, 1998)을 사용하였다. 1998년에서 2003년까지 총 7개의 강우사상을