• Title/Summary/Keyword: long-term runoff analysis

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A Study of Long-Term Runoff analysis in Volcano Island (화산도서지역에서의 장기 유출량 산정에 관한 연구)

  • Lee, Nam-Hun;Lee, Hyo-Jung;Kim, Dong-Pill;Ahn, Seung-Seop
    • Proceedings of the Korea Water Resources Association Conference
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    • 2010.05a
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    • pp.1238-1241
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    • 2010
  • 우리나라의 대표적인 화산도서지역인 제주도는 연 평균 강우량이 1,975mm로 우리나라 최대 다우지역이며, 투수성이 좋은 다공질 화산암류 및 화산회토로 이루어져 있어 지하수 함양율이 총 강우량의 48.5%로 국내에서 가장 높은 수문지질 여건을 지니고 있다. 또한, 강우 후에는 143개의 하천 중 6개의 하천을 제외한 나머지 하천에서 내륙과 달리 평상시 건천의 형태로 유지되고 있으며, 지표수의 발달이 매우 빈약하다. 이러한 연유로 인해 제주도는 수자원의 대부분을 지하수에 의존하고 있으며, 향후 지속적인 수자원을 확보하기 위해서는 지표수의 개발이 절실하게 필요한 실정이다. 제주도는 지하수와 관련된 연구는 부분적으로 진행되어 왔으나 제주도 하천에 대한 유량 관측과 수문모델을 적용하여 유출량을 산정하는 연구는 거의 없는 편이다. 본 연구에서는 장기 강우-유출 모형인 SWAT 모형을 이용하여 상시 유출이 이루어지고 있는 제주도 서귀포 유역에 포함되는 예례천, 궁산천, 영천을 선정하였으며, SWAT 모형의 입력자료인 기상자료와 지형자료(DEM, Land Use, Soil Type)를 구축하여 직접유출량 및 실제증발산량을 산정하였다.(2002. 01. 01~2008. 12. 31) 각 년도별 평균 직접유출량 및 평균 실제증발산량 산정 결과 예례천 유역은 570.14mm, 444.15mm로 나타났으며, 궁산천은 570.51mm, 585.41mm이며, 영천은 444.15mm, 602.51mm로 나타났다. 위의 연구결과는 장기 일 유출량 모의에 대하여 전체적으로 우수한 결과를 보이고 있으며, 향후 많은 유출량 자료를 확보하여 본 연구의 결과와 비교 검정한다면 제주도 하천의 장기 일 유출량 모의 할 수 있을 것이라 판단된다. 또한 제주도의 유역 전반의 통합 관리 측면에서 뛰어난 적용성과 폭 넓게 활용함으로써 우수한 연구 결과를 도출할 것으로 판단된다.

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Analysis of Runoff Characteristics of NPS Pollution through long-term monitoring from Coal yard (장기모니터링을 통한 저탄장의 비점오염물질 유출특성 분석)

  • Shin, Jae-Young;Shin, Min-Hwan;Choi, Yong-Hun;Lee, Su-In;Choi, Joong-Dae
    • Proceedings of the Korea Water Resources Association Conference
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    • 2012.05a
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    • pp.888-888
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    • 2012
  • 본 연구는 3년(2008~2011년)간의 연구기간동안 저탄장에서 발생하는 유량과 수질농도를 분석하여 저탄장의 비점오염 유출특성을 파악하고자 하였다. 연구지점은 강원도 태백시에 위치한 가행 광산으로써 광산작업으로 인해 생산되는 비축탄(석탄과 광재)을 저장하는 대규모 저탄시설이다. 저탄장에는 강우로 인해 발생하는 강우유출수의 오염물질 배출량을 줄이기 위해 콘크리트 배수로와 침사지 시설이 설치되어 있다. 침사지를 거쳐 하천으로 유입되기 전에 강우유출수의 모니터링을 위해 모니터링 시설(유량계, 자동수질시료채취기, 강우량계)을 설치하여 유량과 농도를 측정하였다. 또한 정확한 강우량 측정을 위해 자기우량계를 설치하였다. 연구결과 강우에 의해 유출이 발생한 최저 강우량은 6.0 mm 인 것으로 나타났으며, 강우사상의 강우량은 6.0~248.4 mm의 범위로 나타났다. 이때 평균 강우강도는 0.6~13.1 mm/hr 인 것으로 나타났으며, 강우에 발생한 강우유출수의 유출률은 0.02~0.40으로 나타났다. 저탄장의 경우 저탄장의 표면을 비닐 캔버스로 덮어두기 때문에 불투수층이 많아 6.0 mm 정도의 적은양의 강우가 발생해도 유출이 발생하는 것으로 나타났다. 각 강우사상의 EMC 농도는 SS 6.5~712.3 mg/L, $COD_{Cr}$ 11.6~263.9 mg/L, $COD_{Mn}$ 3.4~106.8 mg/L, $BOD_5$ 1.0~56.0 mg/L, TN 0.145~5.600 mg/L, TP 0.101~2.526 mg/L, DOC 0.6~22.0 mg/L로 나타났다. 저탄장에서 측정된 수질농도는 기존 가행 광산에 관한 연구에 비해 SS 농도가 낮게 산정 되었으며, 이는 저탄장에 설치되어 있는 침사지 시설의 영향인 것으로 판단된다. 본 연구의 결과는 저탄장에서 발생하는 비점오염원의 유출특성을 파악하고, 모델링이나 환경정책에 필요한 기초자료로 활용할 수 있을 것으로 판단된다. 그러나 강우량, 면적, 피복율 또는 침사지 시설 등의 영향에 대한 추가적인 모니터링을 통한 다각적인 분석의 연구가 진행되어야 할 것으로 판단된다.

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An Analysis of Changes in Long-term Runoff Characteristics due to Dam Construction using SWAT Model (SWAT 모형을 이용한 댐 건설에 따른 장기유출특성변화 분석)

  • Yeo, Ho-Jun;Ahn, Jae-Hyun
    • Proceedings of the Korea Water Resources Association Conference
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    • 2012.05a
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    • pp.975-975
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    • 2012
  • 최근까지 용수확보와 홍수예방, 하천환경관리 등의 목적으로 많은 댐이 건설되어 왔으며 이러한 댐 건설은 주변지역의 자연 및 사회 환경의 변화를 유발하게 된다. 이는 구체적으로 유출특성의 변화로 나타나며 유출특성의 변화는 수자원의 계획과 관리 측면에 상당한 영향을 끼친다. 따라서 정확한 장기유출량의 예측은 이수 측면에서 대단히 중요하며 이에 대한 신뢰성 있는 해석이 수행되어야 한다. 본 연구에서는 SWAT 모형을 이용하여 댐 건설에 따른 유역의 장기유출특성변화를 분석하였다. 충주댐 상류유역을 대상으로 분석기간을 댐 건설 전(1975~1985년)과 댐 건설 후(1986~1995년, 1996~2005년)로 나누어 적용하였고, 해당 관측소에서 제공하는 수문 기상자료와 지형자료를 이용하여 입력자료를 구축하였다. SWAT 입력 모형의 최적값을 결정하기 위해 유출총량 및 첨두유량 감쇄곡선 형태에 영향을 미치는 유출관련 매개변수를 선정하여 보정하였고, 유역 최종 출구점인 충주댐 지점에서의 일 유출자료에 대해 관측치와 모의치를 비교하였다. 그 결과 상관계수는 0.89와 0.71, 모형효율은 0.87과 0.76으로 매우 양호한 결과를 보였으며 이는 SWAT 모형이 장기 유출 모의에 있어 안정적 결과를 제공함을 판단할 수 있었다. 보정된 결과를 바탕으로 장기유출모의결과 계산평균유량과 계산첨두유량 모두 관측결과와 상대오차 10%이하의 만족스러운 결과를 보였으며 댐 건설 전 후의 유출특성 비교결과 전반적으로 댐 건설 이후 유출률이 증가하는 특성이 나타났다. 댐 건설 후 나타나는 유출률 변화를 규명하고자 수문성분별 모의를 실시하였으며 그 결과 지표유출이 4% 증가 하였고 증발산량이 3% 감소하였다. 이는 대상유역의 도시화에 의한 불투수면적의 증가와 산림면적 감소 때문으로 추정되며, 이로 인하여 댐 건설 후 유출률이 소폭 증가하였음이 판단된다. 이상의 결과들로부터 SWAT 모형은 장기 일 유출량 추정 및 유역 전반의 통합관리 측면에서 적용성과 활용성이 우수하다고 판단되며 댐 건설로 인한 자연환경의 변화는 유역의 유출특성의 변화에 영향을 준다는 결론을 얻을 수 있었다. 이러한 결과를 확장하여 댐 건설 이외에 다양한 요소들을 모형에 적용하고 유역개발에 따른 수문환경의 전반적인 변화에 대한 유출평가가 필요하다고 판단된다.

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Korean Soil Characteristics Database for SWAT-K Model (SWAT-K 모형의 국내 토양특성 정보 구축)

  • Lee, Jeong Eun;Kim, Chul-Gyum;Lee, Jeongwoo;Chung, Il-Moon
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.44 no.4
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    • pp.495-501
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    • 2024
  • SWAT-K (Soil and Water Assessment Tool-Korea) model is a long-term runoff model using a soil-centered water balance equation. Soil is crucial for simulating hydrological components, requiring a database (usersoil.dbf) with soil series attribute information. Since the soil property information estimated by soil transfer functions developed overseas does not reflect the characteristics of domestic soil, the Korea Institute of Civil Engineering and Building Technology has established the soil database, which incorporates the results of domestic soil surveys and research from the National Institute of Agricultural Sciences. This study provides a more detailed description of the hydrological component simulation process using soil property information and revises and supplements the previously established soil database to operate in the latest SWAT model. Additionally, by providing this database through the integrated water management platform, it is expected to be utilized not only in the SWAT-K model but also in various watershed hydrological models developed considering soil characteristics.

The Characteristics of Runoff for Hwacheon dam watershed (화천댐 상류유역의 유출거동 특성)

  • Kim, Nam-Won;Lee, Jeong-Eun
    • Journal of Korea Water Resources Association
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    • v.42 no.12
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    • pp.1069-1077
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    • 2009
  • Lately, it is an important concern in water resources research to maintain a stable water supply according to a future climate change and an increase in water use. In Han-River basin, approximately 10 % of water resources that is provided the capital region (Gyeonggi, Seoul etc.) has been reduced as a consequence of the construction of Imnam Dam (storage volume: 27 billion $m^3$) located in the upper Hwacheon Dam upstream area. Therefore, streamflows have decreased in Bukhangang basin, but it could not be evaluated quantitatively. In this study, SWAT-K which is the physically based long-term runoff simulation model, was used in order to evaluate the effect of Imnam Dam on the reduced inflow to Hwacheon Dam according to the change of hydrological condition in the upstream area of Hwacheon Dam. For the model input data of North Korea area, meteorological data of GTS (Global Telecommunication System) were used, and soil maps by FAO/UNESCO (2003) were applied. Temporal variations of water resources is investigated with comparison of observed and simulated inflows at Hawcheon Dam site. Also, annual, monthly, seasonal decreases in water resources were evaluated using the flow duration analysis of simulated streamflows with or without Imnam dam.

Analysis on the Potentiality of Domestic Rainwater Harvesting in Metro Manila (마닐라 지역의 가정용 우수저류시설 잠재가용성 분석)

  • Felix, Micah Lourdes A.;Maniquiz, Marla C.;Seo, Sung-Ho;Kim, Lee-Hyung;Jeong, Sang-Man
    • Journal of Wetlands Research
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    • v.13 no.3
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    • pp.633-641
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    • 2011
  • The Philippines is known for its abundant water resources such as the rainfall, where it has a mean annual rainfall range from 965 to 4,100mm. Due to the rapid urbanization of the country, the population in Metro Manila has been continuously increasing hence, the demand for a potable water supply also increases. To mitigate the scarcity of potable water supply, utilization of the water resources should be practiced. Rainwater harvesting is one way to utilize the rainfall runoff. This study analyzedthe potentiality of the rainwater harvesting on residential areas in Metro Manila. A water balance method based spreadsheet was used with input parameters including daily rainfall, catchment area, runoff coefficient, population and the water demand. The efficiency of the domestic water tank was analyzedusing the three different climatic conditions (i.e., minimum, median andmaximum annual rainfalls) and three different types of toilets (i.e., inefficient, conventional and dual-flush toilets). Furthermore, the overflow volume was used to determine which size of rainwater storage was more appropriate for the study area. The results of the study showed that for the three types of rainfall years, only the conventional and dual-flush toilets were suitable for the utilization of rainwater harvesting. The utilization of the $60m^3$ storage tank was sufficient for supplying the demandsof the 90 houses only for a small period of time, 3 months. Based from this study, to fully sustain the long-term water demand of the houses, the enlargement of the tank size having a capacity of 1,100 to $2,500m^3$ is ideal.

Water Balance Analysis of Pumped-Storage Reservoir during Non-Irrigation Period for Recurrent Irrigation Water Management (순환형 농업용수관리를 위한 농업용 저수지의 비관개기 양수저류 추정)

  • Bang, Na-Kyoung;Nam, Won-Ho;Shin, Ji-Hyeon;Kim, Han-Joong;Kang, Ku;Baek, Seung-Chool;Lee, Kwang-Ya
    • Journal of The Korean Society of Agricultural Engineers
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    • v.62 no.4
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    • pp.1-12
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    • 2020
  • The extreme 2017 spring drought affected a large portion of South Korea in the Southern Gyeonggi-do and Chungcheongnam-do districts. This drought event was one of the climatologically driest spring seasons over the 1961-2016 period of record. It was characterized by exceptionally low reservoir water levels, with the average water level being 36% lower over most of western South Korea. In this study, we consider drought response methods to alleviate the shortage of agricultural water in times of drought. It could be to store water from a stream into a reservoir. There is a cyclical method for reusing water supplied from a reservoir into streams through drainage. We intended to present a decision-making plan for water supply based on the calculation of the quantity of water supply and leakage. We compared the rainfall-runoff equation with the TANK model, which is a long-term run-off model. Estimations of reservoir inflow during non-irrigation seasons applied to the Madun, Daesa, and Pungjeon reservoirs. We applied the run-off flow to the last 30 years of rainfall data to estimate reservoir storage. We calculated the available water in the river during the non-irrigation season. The daily average inflow from 2003 to 2018 was calculated from October to April. Simulation results show that an average of 67,000 tons of water is obtained during the non-irrigation season. The report shows that about 53,000 tons of water are available except during the winter season from December to February. The Madun Reservoir began in early October with a 10 percent storage rate. In the starting ratio, a simulated rate of 4 K, 6 K, and 8 K tons is predicted to be 44%, 50%, and 60%. We can estimate the amount of water needed and the timing of water pump operations during the non-irrigation season that focuses on fresh water reservoirs and improve decision making for efficient water supplies.

The Analysis of Future Land Use Change Impact on Hydrology and Water Quality Using SWAT Model (SWAT 모형을 이용한 미래 토지이용변화가 수문 - 수질에 미치는 영향 분석)

  • Park, Jong-Yoon;Lee, Mi Seon;Lee, Yong Jun;Kim, Seong Joon
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.28 no.2B
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    • pp.187-197
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    • 2008
  • This study is to assess the impact of future land use change on hydrology and water quality in Gyungan-cheon watershed ($255.44km^2$) using SWAT (Soil and Water Assessment Tool) model. Using the 5 past Landsat TM (1987, 1991, 1996, 2004) and $ETM^+$ (2001) satellite images, time series of land use map were prepared, and the future land uses (2030, 2060, 2090) were predicted using CA-Markov technique. The 4 years streamflow and water quality data (SS, T-N, T-P) and DEM (Digital Elevation Model), stream network, and soil information (1:25,000) were prepared. The model was calibrated for 2 years (1999 and 2000), and verified for 2 years (2001 and 2002) with averaged Nash and Sutcliffe model efficiency of 0.59 for streamflow and determination coefficient of 0.88, 0.72, 0.68 for Sediment, T-N (Total Nitrogen), T-P (Total Phosphorous) respectively. The 2030, 2060 and 2090 future prediction based on 2004 values showed that the total runoff increased 1.4%, 2.0% and 2.7% for 0.6, 0.8 and 1.1 increase of watershed averaged CN value. For the future Sediment, T-N and T-P based on 2004 values, 51.4%, 5.0% and 11.7% increase in 2030, 70.5%, 8.5% and 16.7% increase in 2060, and 74.9%, 10.9% and 19.9% increase in 2090.

Analysis of the effect of long-term water supply improvement by the installation of sand dams in water scarce areas (물부족 지역에서 샌드댐 설치에 의한 장기 물공급 개선 효과 분석)

  • Chung, Il-Moon;Lee, Jeongwoo;Lee, Jeong Eun;Kim, Il-Hwan
    • Journal of Korea Water Resources Association
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    • v.55 no.12
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    • pp.999-1009
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    • 2022
  • The Chuncheon Mullori area is an underprivileged area for water welfare that does not have a local water supply system. Here, water is supplied to the village by using a small-scale water supply facility that uses underground water and underground water as the source. To solve the problem of water shortage during drought and to prepare for the increasing water demand, a sand dam was installed near the valley river, and this facility has been operating since May 2022. In this study, in order to evaluate the reliability of water supply when a sand dam is assumed during a drought in the past, groundwater runoff simulation results using MODFLOW were used to generate inflow data from 2011 to 2020, an unmeasured period. After performing SWAT-K basin hydrologic modeling for the watershed upstream of the existing water intake source and the sand dam, the groundwater runoff was calculated, and the relative ratio of the monthly groundwater runoff for the previous 10 years to the monthly groundwater runoff in 2021 was obtained. By applying this ratio to the 2021 inflow time series data, historical inflow data from 2011 to 2020 were generated. As a result of analyzing the availability of water supply during extreme drought in the past for three cases of demand 20 m3/day, 50 m3/day, and 100 m3/day, it can be confirmed that the reliability of water supply increases with the installation of sand dams. In the case of 100 m3/day, it was analyzed that the reliability exceeded 90% only when the existing water intake source and the sand dam were operated in conjunction. All three operating conditions were evaluated to satisfy 50 m3/day or more of demand based on 95% reliability of water supply and 30 m3/day or more of demand based on 99% of reliability.

Water Quality Analysis of Hongcheon River Basin Under Climate Change (기후변화에 따른 홍천강 유역의 수질 변화 분석)

  • Kim, Duckhwan;Hong, Seung Jin;Kim, Jungwook;Han, Daegun;Hong, Ilpyo;Kim, Hung Soo
    • Journal of Wetlands Research
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    • v.17 no.4
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    • pp.348-358
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    • 2015
  • Impacts of climate change are being observed in the globe as well as the Korean peninsula. In the past 100 years, the average temperature of the earth rose about 0.75 degree in celsius, while that of Korean peninsula rose about 1.5 degree in celsius. The fifth Assessment Report of IPCC(Intergovermental Panel on Climate Change) predicts that the water pollution will be aggravated by change of hydrologic extremes such as floods and droughts and increase of water temperature (KMA and MOLIT, 2009). In this study, future runoff was calculated by applying climate change scenario to analyze the future water quality for each targe period (Obs : 2001 ~ 2010, Target I : 2011 ~ 2040, Target II : 2041 ~ 2070, Target III : 2071 ~ 2100) in Hongcheon river basin, Korea. In addition, The future water quality was analyzed by using multiple linear regression analysis and artificial neural networks after flow-duration curve analysis. As the results of future water quality prediction in Hongcheon river basin, we have known that BOD, COD and SS will be increased at the end of 21 century. Therefore, we need consider long-term water and water quality management planning and monitoring for the improvement of water quality in the future. For the prediction of more reliable future water quality, we may need consider various social factors with climate components.