• 제목/요약/키워드: Storm rainfall

검색결과 462건 처리시간 0.027초

청양-홍성간 도로에서의 초기강우에 의한 유출부하량 평가 및 기여율 산정 (Evaluation of Runoff Loads and Computing of Contribute ratio by First Flush Stormwater from Cheongyang-Hongseong Road)

  • 이춘원;강선홍;최이송;안태웅
    • 상하수도학회지
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    • 제25권3호
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    • pp.407-417
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    • 2011
  • Nowadays, the high land use, mainly used for urbanization, is affecting runoff loads of non-point pollutants to increase. According to this fact, increasing runoff loads seems like to appear that it contributes to high ratio of pollution loads in the whole the pollution loads and that this non-point source is the main cause of water becoming worse quality. Especially, concentrated pollutants on the impermeable roads run off to the public water bodies. Also the coefficient of runoff from roads is high with a fast velocity of runoff, which ends up with consequence that a lot of pollutants runoff happens when it is raining. Therefore it is very important project to evaluate the quantity of pollutant loads. In this study, I computed the pollutant loadings depending on time and rainfall to analyze characteristics of runoff while first flush storm water and evaluated the runoff time while first flush storm water and rainfall based on the change in curves on the graph. I also computed contribution ratio to identify its impact on water quality of stream. I realized that the management and treatment of first flush storm water effluents is very important for the management of road's non-point source pollutants because runoff loads of non-point source pollution are over the 80% of whole loads of stream. Also according to the evaluation of runoff loads of first flush storm water for SS, run off time was shown under the 30 minute and rainfall was shown under the 5mm which is less than 20% of whole rainfall. These are under 5mm which is regarded amount of first flush storm water by the Ministry of Environment and it is judged to be because run off by rainfall is very fast on impermeable roads. Also, run off time and rainfall of BOD is higher than SS. Therefore I realized that the management of non-point source should be managed and done differently depending on each material. Finally, the contribution ratio of pollutants loads by rainfall-runoff was shown SS 12.7%, BOD 12.7%, COD 15.9%, T-N 4.9%, T-P 8.9%, however, the pollutants loads flowing into the steam was shown 4.4%. This represents that the concentration of non-point pollutants is relatively higher and we should find the methodical management and should be concerned about non-point source for improvement on water quality of streams.

자료기간 증가에 따른 확률강우량의 거동특성 분석 (Analysis of the Changes in Rainfall Quantile according to the Increase of Data Period)

  • 안재현;김태웅;유철상;운용남
    • 한국수자원학회논문집
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    • 제33권5호
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    • pp.569-580
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    • 2000
  • 지구온난화와 같은 기후변화로 인해 최근에 한반도에서 급증하고 있는 집중호우의 영향을 알아보기 위해서 12개 우량관측소 지점의 연 최대 강우량 계열에 대한 빈도해석을 실시하였다. 확률강우량의 시간적인 변화를 알아보기 위해 자료기간을 30년으로 한 후 1년씩 이동하면서 l00년 빈도 확률강우량을 산정하였고, 80% 이상의 지점에서 최근의 집중호우가 과거에 비해 상대적으로 증가하고 있음을 확인하였다. 또한 자료기간을 1년씩 누가하면서 100년 일최대 확률강우량을 산정하여 집중호우가 발생했던 해의 연 최대 강우량 포함에 따른 확률강우량의 증가 경향을 파악하였다. 이를 통해 수공고조물의 설계를 위한 빈도해석시 자료기간 산정의 중요성과 기존 하천시스템의 홍수방어능력에 대한 재평가 필요성을 확인할 수 있었다.

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계획강우의 지속기간에 따른 저류지용량의 산정 (Estimation of the Stormwater Impoundments Volume Dependent on the Durations of Design Rainfall)

  • 윤여진;이재철
    • 한국수자원학회논문집
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    • 제34권5호
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    • pp.415-426
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    • 2001
  • 재해영향평가제도가 시행된 이후 평가서에는 홍수량 산정 및 개발로 인해 증가된 유출량에 대한 대처방안으로 저류지용량을 산정할 때 임계지속기간의 개념을 도입하여 각종 수문량이 산정된다. 임계지속기간은 수공구조물의 종류, 유역특성과 계획강우의 시간적분포 및 재현기가, 유출모형에 따라 변화한다. 본 연구에서는 저류지 설계시 소요용량을 결정하기 위해 기존 연구에서 제안한 바 있는 저류비의 개념을 이용하여 산정된 저류지용량과 강우지속기간에 따른 저류지용적이 최대가 되는 때의 저류지용적 등을 비교·분석함으로써 저류지 설계시 적정용량을 산정하는 방법을 제안하였다. 추후 유출수문곡선으로부터 최대부하를 야기시키는 계획강우의 임계지속기간을 정하는 문제는 다양한 유출모형과 실적자료를 통한 강우-유출해석과 연계시켜야 할 것으로 판단된다.

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영동지역 악기상 사례에 대한 MTSAT 위성 영상의 특징 (MTSAT Satellite Image Features on the Sever Storm Events in Yeongdong Region)

  • 김인혜;권태영;김덕래
    • 대기
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    • 제22권1호
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    • pp.29-45
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    • 2012
  • An unusual autumn storm developed rapidly in the western part of the East sea on the early morning of 23 October 2006. This storm produced a record-breaking heavy rain and strong wind in the northern and middle part of the Yeong-dong region; 24-h rainfall of 304 mm over Gangneung and wind speed exceeding 63.7 m $s^{-1}$ over Sokcho. In this study, MTSAT-1R (Multi-fuctional Transport Satellite) water vapor and infrared channel imagery are examined to find out some features which are dynamically associated with the development of the storm. These features may be the precursor signals of the rapidly developing storm and can be employed for very short range forecast and nowcasting of severe storm. The satellite features are summarized: 1) MTSAT-1R Water Vapor imagery exhibited that distinct dark region develops over the Yellow sea at about 12 hours before the occurrence of maximum rainfall about 1100 KST on 23 October 2006. After then, it changes gradually into dry intrusion. This dark region in the water vapor image is closely related with the positive anomaly in 500 hPa Potential Vorticity field. 2) In the Infrared imagery, low stratus (brightness temperature: $0{\sim}5^{\circ}C$) develops from near Bo-Hai bay and Shanfung peninsula and then dissipates partially on the western coast of Korean peninsula. These features are found at 10~12 hours before the maximum rainfall occurrence, which are associated with the cold and warm advection in the lower troposphere. 3) The IR imagery reveals that two convective cloud cells (brightness temperature below $-50^{\circ}C$) merge each other and after merging it grows up rapidly over the western part of East sea at about 5 hours before the maximum rainfall occurrence. These features remind that there must be the upward flow in the upper troposphere and the low-layer convergence over the same region of East sea. The time of maximum growth of the convective cloud agrees well with the time of the maximum rainfall.

강우시 합류식 하수관거의 유출특성 분석 (Analysis of Storm Water Run-off Characteristics during Wet Weather)

  • 최성현;최승철;박은영;임재명
    • 산업기술연구
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    • 제22권B호
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    • pp.95-101
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    • 2002
  • Much of domestic city is served by combined sewer system rather than separate sanitary or storm sewers. During wet weather, when the volume of sanitary sewage and storm water entering the combined sewers exceeds the system capacity, the system is designed to overflow at several designated CSOs. The objective of this research is to have grasp of characteristics of combined sewer runoff and to evaluate efficiently the intercepted volume of CSOs. During the wet weather in first rainfall, SS load at each site H-1, H-2, and H-3 were 600kg/event, 370kg/event, and 289kg/event, SS load at each site in second rainfall were 216kg/event, 113kg/event, and 37.2kg/event. EMCs at each site were 702mg/L, 816mg/L, 861mg/L in first rainfall and 99.9mg/L, 161.9mg/L, 103.6mg/L in second rainfall, respectively. First flush coefficients b at each site were 0.237, 0.166, and 0.151.

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유역형상에 따르는 이동강우의 유출영향분석(I) - 대칭유역형상 - (Runoff Analysis due to Moving Storms based on the Basin Shapes (I) - for the Symmetric Basin Shape -)

  • 한건연;전민우;김지성
    • 대한토목학회논문집
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    • 제26권1B호
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    • pp.15-25
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    • 2006
  • 유역형상의 변화에 따라서 이동강우가 유출에 미치는 영향을 운동파이론을 적용하여 분석하였으며, 유역형상은 신장형유역과 정사각형유역 및 장방형유역에 대하여 분석하였고, 이동강우 분포형은 균등분포형, 전진형, 지연형, 중앙집중형을 사용하였다. 이와 같은 형상의 유역에 대하여 다양한 이동속도를 가진 강우가 유역내 하천의 상류방향, 하류방향, 횡방향으로 이동할 때 강우분포형에 따르는 유출수문곡선을 모의하여 그 특성을 비교분석하였다. 유출수문곡선의 모양과 첨두시간, 첨두유량은 시간적, 공간적으로 변화하는 강우와 유역형상에 의하여 크게 영향을 받는다. 횡방향의 이동강우에서는 상류방향과 하류방향의 경우보다 더 큰 첨두유량이 발생하며, 하류방향 이동강우의 첨두유량은 상류방향의 첨두유량보다 더 크게 나타났다. 신장형유역의 경우 하류방향 이동강우의 첨두시간은 상류방향과 횡방향의 경우보다 더 지체되며, 수문곡선의 총유출량과 기저시간은 강우속도가 증가함에 따라 감소하였다.

TRMM/PR 관측치와 지상 관측치와의 상관분석 - 용담댐 유역을 대상으로 - (Correlation Analysis Using Precipitation Radar of TRMM Satellite and Ground Observed Value : YONG-DAM Watershed)

  • 장철희;박근애;김성준
    • 한국농공학회:학술대회논문집
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    • 한국농공학회 2001년도 학술발표회 발표논문집
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    • pp.335-339
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    • 2001
  • The Tropical Rainfall Measuring Mission(TRMM) Satellite was launched in November 1997, carrying into orbit the first space-borne Precipitation Radar(PR). The purpose of this study is to identify the relationship between TRMM/PR and AWS raingage data, and test the possibility to apply storm runoff prediction. Four TRMM/PR data in 1999 for Yongdam watershed was adopted and made a simple linear regression equation using AWS data. By using the equation, the storm runoff was estimated with the adjusted rainfall. TRMM/PR rainfall and runoff was overall underestimated by the carry-over effect of rainfall error and SCS-CN value selection.

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홍수 예.경보 체계 개발을 위한 연구 - 화옹호 유역의 유역 확률홍수량 산정 - (Computing Probability Flood Runoff for Flood Forecasting & Warning System - Computing Probability Flood Runoff of Hwaong District -)

  • 김상호;김한중;홍성구;박창언;이남호
    • 한국농공학회논문집
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    • 제49권4호
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    • pp.23-31
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    • 2007
  • The objective of the study is to prepare input data for FIA (Flood Inundation Analysis) & FDA (Flood Damage Assessment) through rainfall-runoff simulation by HEC-HMS model. For HwaOng watershed (235.6 $km^{2}$), HEC-HMS was calibrated using 6 storm events. Geospatial data processors, HEC-GeoHMS is used for HEC-HMS basin input data. The parameters of rainfall loss rate and unit hydrograph are optimized from the observed data. HEC-HMS was applied to simulate rainfall-runoff relation to frequency storm at the HwaOng watershed. The results will be used for mitigating and predicting the flood damage after river routing and inundation propagation analysis through various flood scenarios.

강우유출오염부하를 고려한 호수수질모델링 (Lake Water Quality Modelling Considering Rainfall-Runoff Pollution Loads)

  • 조재현;강성효
    • 환경영향평가
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    • 제18권2호
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    • pp.59-67
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    • 2009
  • Water quality of the Lake Youngrang in the Sokcho City is eutrophic. Jangcheon is the largest inflow source to the lake. Major pollutant sources are stormwater runoff from resort areas and various land uses in the Jangcheon watershed. A storm sewer on the southern end of the lake is also an important pollution source. In this study, water quality modelling for Lake Youngrang was carried out considering the rainfall-runoff pollution loads from the watershed. The rainfall-runoff curves and the rainfall-runoff pollutant load curves were derived from the rainfall-runoff survey data during the recent 4 years. The rainfall-runoff pollution loads and flow from the Jangcheon watershed and the storm sewer were estimated using the two kinds of curves, and they were used as the flow and the boundary data of the WASP model. With the measured water quality data of the year 2005 and 2006, WASP model was calibrated. Non-point pollution control measures such as wet pond and infiltration trench were considered as the alternative for water quality management of the lake. The predicted water quality were compared with those under the present condition, and the improvement effect of the lake water quality were analyzed.

단위유량도법에 의한 소유역의 계획홍수량 결정 (A Determination of Design Flood for a small Basin by Unit Hydrograph Method)

  • 윤용남;침순보
    • 물과 미래
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    • 제9권2호
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    • pp.76-86
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    • 1976
  • The 30-year design flood hydrograph for the Musim Representative Basin, one of the study basins of the International Hydrological Program, is synthesized by the method of unit hydrograph. The theory of unit hydrograph has been well known for a long time. However, the synthesis of flood hydrograph by this method for a basin with insufficient hydrologic data is not an easy task and hence, assumptions and engineering judgement must be exercized. In this paper, the problems often encountered in applying the unit hydrograph method are exposed and solved in detail based on the theory and rational judgement. The probability rainfall for Cheonju Station is transposed to the Musim Basin since it has not been analyzed due to short period of rainfall record. The duration of design rainfall was estimated based on the time of concentration for the watershed. The effective rainfall was determined from the design rainfall using the SCS method which is commonly used for a small basin. The spatial distribution of significant storms was expressed as a dimensionless rainfall mass curve and hence, it was possible to determine the hyetograph of effective design storm. To synthesize the direct runoff hydrograph the 15-min. unit hydrograph was derived by the S-Curve method from the 1-hr unit hydrograph which was obtained from the observed rainfall and runoff data, and then it was applied to the design hyetograph. The exsisting maximum groundwater depletion curve was derived by the base flow seperation. Hence, the design flood hydrograph was obtained by superimposing the groundwater depletion curve to the computed direct runoff hydrograph resulting from the design storm.

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