• Title/Summary/Keyword: drainage basin area

검색결과 184건 처리시간 0.019초

도시하수도망에 대한 유출모형의 남용과 유출해석 (Runoff Analysis and Application of Runoff Model of Urban Storm Drainage Network)

  • 박성천;이관수
    • 한국환경보건학회지
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    • 제22권4호
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    • pp.33-42
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    • 1996
  • This research is to show the application of runoff model and runoff analysis of urban storm drainage network. the runoff models that were used for this research were RRL, ILLUDAS, and SWMM applicative object basin were Geucknak-chun and Sangmu drainage basin located in Seo-Gu, Kwangju. The runoff analysis employed the design storm that distributed the rainfall intensity according to the return period after the huff's method. The result from the comparative analysis of the three runoff models was as follows The difference of peak runoff by return period was 20-30% at Sangmu drainage area of $3.17 Km^2$, while less than 10% at Geucknak-chun drainage area of $12.7 Km^2$. The peak runoff were similar to all models. At the runoff hydrograph the times between rising and descending points were in the sequence of RRL, ILLUDAS and SWMM, but the peak times were similar to all models. The conveyance coefficient to examine the conveyance of the existing drainage network was 0.94-1.37, which means insecure, in Geucknak-chun drainage basin and 0.69-1.16, which means secure, in sangmu drainage basin.

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배수밀도와 수원유역의 기하학적 특성을 기반으로 한 배수구조에 대한 해석 (Analysis of Drainage Structure Based on the Geometric Characteristics of Drainage Density and Source-Basin)

  • 김주철;김재한
    • 한국수자원학회논문집
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    • 제40권5호
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    • pp.373-382
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    • 2007
  • 수로가 시작되는 지점의 정확한 위치를 찾는 것은 구릉지 사면상의 물의 동적거동으로 인하여 매우 어렵다. 이러한 목적을 위하여, 김주철과 김재한(2007)은 DEM을 이용한 경사와 면적 사이의 규모에 따른 거동특성에 따라 실제 유역내 수로망을 제시한 바 있다. 본 연구는 이들의 연구 성과의 연장으로서, 배수밀도와 수원유역의 기하학적 특성을 기반으로 하여 DEM으로부터 동정된 가설수로망의 신뢰성을 평가하여 보았다. 그 결과 경사-면적한계기준에 의한 가설수로망이 자연유역의 배수구조를 매우 잘 묘사하고 있음을 확인할 수 있었다. 또한 지형학적 동질성을 가진 지역내 수원유역의 형상들 사이에는 훌륭한 기하학적 상사성이 존재함을 추론할 수 있었다. 면적한계기준은 수원유역의 형상을 구속하여 왜곡된 배수구조를 야기할 수도 있었다. 그럼에도 불구하고 DEM으로부터 동정된 가설수로망들이 공간 채움 구조를 잘 표현하고 있는 점이 특히 주목된다.

고속도로 현장별 비점오염 저감시설 선정방안 연구 (A Study for selecting the Highway Sites' Best Management Practice for Nonpoint Source Pollution)

  • 이용복;최상일;박계수;성일종;정선국
    • 환경영향평가
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    • 제20권6호
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    • pp.857-866
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    • 2011
  • This research categorized EIA target highways into following three types in order to minimize non-point source pollution from highway runoff. 1. Big drainage basin. 2. Small drainage basin. 3. Bridge section. The Natural, Filter and Swirl-Type devices were evaluated in terms of removal efficiency of TSS, BOD, COD, T-N, T-P, compatibility of site selection, economic feasibility, and maintenance convenience through which the final BMP was selected. According to the removal efficiency result, the area of Big and Small Drainage basin and bridge section had higher removal efficiency with natural facility than that of the Filter or Swirl-Type device. To make appropriate selection of highways'BMP for non-point source pollution, this study will aim to contribute to building more environmentally friendly highways by proposing the selection process that is made of 5 stages. 1. Selecting the target drainage basin. 2. Selecting the land for the mitigation facility. 3. Analysing the ease of maintenance. 4. Technically evaluating each installation. 5. Evaluating the effective implementation methods.

도시유역의 내수배제시스템 설계를 위한 유출특성분석 -SWMM의 적용- (Runoff Characteristics Analysis for Interior Drainage Systems in Urban Basin -Application of SWMM-)

  • 최윤영;이영화
    • 한국환경과학회지
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    • 제9권3호
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    • pp.193-199
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    • 2000
  • This study is carried out the analysis of the runoff characteristics for the design of the interior drainage systems by SWMM in urbanization basin. The basin analyzed in this study is Bumuh-chun basin which is located in Susung-gu of Taegu city. Huff method is used for rainfall distribution analysis. The optimal rainfall duration in Bumuh-chun basin is analyzed as about 90 minutes decided from comparison of arrival time and critical duration. Flood flow variation pattern is proposed through the comparison of the results of peak flow and peak time analyzed by SWMM about pre-urbanization and post-urbanization of Bumuh-chun basin. It is known that the variation of arrival time caused by the rapid increase of pavement rate in the upper area shows about 20∼25 minutes faster than pre- urbanization. Therefore, the management of surface water for design of water supply and drainage, and channel alteration has to considered the variation of geological factors according to urbanization.

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Comparative Study on the Runoff Process of Granite Drainage Basins in Korea and Mongolia

  • Tanaka, Yukiya;Matsukura, Yukinori
    • 한국제4기학회지
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    • 제17권2호
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    • pp.79-84
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    • 2003
  • This study revealed the differences in runoff processes of granite drainage basins in Korea and Mongolia by hydrological measurements in the field. The experimental drainage basins are chosen in Korea (K-basin) and Mongolia (M-basin). Occurrence of intermittent flow in K-basin possibly implies that very quick discharge dominates. The very high runoff coefficient implies that most of effective rainfall quickly discharge by throughflow or pipeflow. The Hortonian overlandflow is thought to almost not occur because of high infiltration capacity originated by coarse grain sized soils of K- basin. Very little baseflow and high runoff coefficient also suggest that rainfall almost does not infiltrate into bedrocks in K-basin. Flood runoff coefficient in M-basin shows less than 1 %. This means that most of rainfall infiltrates or evaporates in M-basin. Runoff characteristics of constant and gradually increasing discharge imply that most of rainfall infiltrates into joint planes of bedrock and flow out from spring very slowly. The hydrograph peaks are sharp and their recession limbs steep. Very short time flood with less than 1-hour lag time in M-basin means that overland flow occurs only associating with rainfall intensity of more than 10 mm/hr. When peak lag time shows less than 1 hour for the size of drainage area of 1 to 10 km2, Hortonian overland flow causes peak discharge (Jones, 1997). The results of electric conductivity suggest that residence time in soils or weathered mantles of M-basin is longer than that of K-basin. Qucik discharge caused by throughflow and pipeflow occurs dominantly in K-basin, whereas baseflow more dominantly occur than quick discharge in M-basin. Quick discharge caused by Hortonian overlandflow only associating with rainfall intensity of more than 10 mm/hr in M-basin.

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도시 하수도망의 수문학적인 평가와 설계확률유량의 점대화 성향에 관한 연구(제1보) (A Study on Hydrologic Analysis and Some Effects of Urbanization on Design Flow of Urban Storm Drainage Systems (1))

  • 강관원;서병하;윤용남
    • 물과 미래
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    • 제14권4호
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    • pp.27-34
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    • 1981
  • The design flow of the urban strom drainage systems has been assessed largely on a basis of empirical relations between rainfall and runoff, and the rational formula has been widely used for the cities in our country. In order to estimate it more accurately, the urban runoff simulation model based on the RRl method has been developed and applied to the sample basin in this study. The rainfall hyetograph of the design stromfor the design flow has been obtained by the determination of the total rainfall and the temporal distributions of that rainfall. The total rainfall has been assessed from the empirical formula of rainfall intensity and the temporal distribution of that rainfall determined on the basis of Huff's method from the historical rainfall data of the basin. The virtual inflow hydrograph to each inlet of the basin has been constructed by computing the series of discharges in each time increment, using design strom hyetograph and time-area diagram. The actual runoff hydrograph at the basin outlet has been computed from the virtual inflow hydrographs by developing a relations between discharge and storage for the watershed. The discharge data for verification of the simulated runoff hydrograph are not available in the sample basin and so the sensitivity analysis of the simulation model has not been possible. The peak discharge for the design of drainage systems has been estimated from the computed runoff hydrograph at the basin outlet and compared to thatl obtained form the rational formula.

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안계분지(安溪盆地)의 지형발달 (The Geomorphic Development of Angyae Basin)

  • 박병수;손명원
    • 한국지역지리학회지
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    • 제3권1호
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    • pp.51-62
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    • 1997
  • 우리나라 대하천 유역의 곳곳에는 분지(盆地)들이 산재(散在)한다. 분지저(盆地底)(basin floor)에는 주변을 둘러싼 산지에서 하천이 운반해 온 사력물질(砂礫物質)이 쌓여 충적평야가 형성되어 생산성이 상대적으로 높기 때문에 행정 경제 문화적 중심지를 이룬다. 산간분지(山間盆地)는 배후산지(背後山地)와 구릉지(丘陵地), 그리고 저평지(低平地)로 구성되어 있다. 본 논문에서는 퇴적암 지역에 위치한 안계분지(安溪盆地)를 선정하여 그 형성과정(形成過程)과 형성시기(形成時期)를 구명(究明)해 보고자 한다. 안계분지내에 분포하는 해발고도 $80{\sim}100m$의 구릉지는 온난다습한 기후하에서 지질연경차와 지질구조선을 따라 심층풍화된 기반암 풍화층이 탈거되면서 만들어진 etchplain이 해석되고 남겨진 잔유물이다. 이들 구릉지는 etchplain 형성시부터 비교적 높은 기복을 이루었기 때문에 유수의 작용을 받은 적이 없다. 이들 구릉지로 표현되는 etchplain은 위천의 하천시스템이 평형상태를 이루어 위천의 하상이 국지적 침식기준면으로 작용함으로써 낙동강 상류유역에 고위 하안단구가 형성되고 서부리에 절단곡류가 만들어진 동일 시기에 형성되었다.

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배수펌프장의 효율적인 운영을 위한 퍼지모형의 적용 (Application of the Fuzzy Models for the Efficient Operation of Pumping Station)

  • 김윤태;심재현;정재학;안재찬
    • 한국방재학회 논문집
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    • 제4권3호
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    • pp.51-60
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    • 2004
  • 최근 도시지역의 수해요인은 내수침수불량에 기인하기 때문에 유수지 및 배수펌프장을 신설하여 유수지로 유입되는 유출량을 하천으로 강제배수하게 된다. 그러나 하수관거의 용량이 부족하여 유수지로 미처 유입되기 전에 하수관거의 역류로 침수피해가 자주 발생하고 있다. 따라서 본 연구에서는 도시 내배수 체계의 조사방법을 제시, 하수관거의 위험도를 평가하고 개선할 수 있는 방안을 제시하였다. 또한 배수펌프의 가동대수를 단순한 수위기준에서 변화시켜 실무에서 전문가가 아니더라도 사용할 수 있는 전산모형 8개를 개발하여 제시하였고, 지속기간, 설계빈도, 시간분포 등을 변화시켜 유수지 수위의 적정 조절여부를 검토하였다. 그리고 강제적인 배수에 의해 하류부의 수위영향이 예견되기 때문에 해당 유역의 수위를 안전하게 유지하면서도 하류부에 수위영향을 최소화할 수 있는 방안에 대해서도 검토하였다. 연구결과 Fuzzy 모형이 기존의 운영방법보다 더 효과적으로 유수지의 수위를 저하시킬 수 있었으며, 하류부 수위는 약 8cm 정도 감소시킬 수 있었다.

도시의 지형적 입지정보에 관한 연구 (A Study on the Site Information of Urban)

  • 윤인혁
    • 정보학연구
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    • 제10권2호
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    • pp.1-9
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    • 2007
  • This study analyzed major cities of Chung-cheong area in Korea, -Daejeon($36^{\circ}11'{\sim}36^{\circ}30'\;N$, $127^{\circ}15'{\sim}127{\circ}34'\;E$), Chungju($36^{\circ}54'{\sim}37{\circ}02'\;N$, $127^{\circ}52'{\sim}128^{\circ}02'\;E$), and Cheongju($36^{\circ}34'{\sim}36^{\circ}44'\;N$, $127^{\circ}22'{\sim}127^{\circ}34'\;E$)- their characteristics as a Information Site. The geology map, a summit level map, and a drainage network map are created and analyzed the Site. The results are as follows : First, the geology of these cities are related with the shapes and the characteristics of the inner basins. The relief of inner basin determines by the characteristics of the bedrocks. Second, the major cities are close to rivers and the size of the granite & alluvium area influences the relief energy of the urban areas. Finally, the drainage networks explains the process involved in forming the basin and development of urban area.

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저수지의 퇴사에 관한 연구 (Study on Sedimentation in Reservoir)

  • 류희정;김치원
    • 물과 미래
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    • 제9권2호
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    • pp.67-75
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    • 1976
  • With 9 existng reservoirs selected in the Sab-Gyo River Basin, the sedimentation of the reservoirs has been calculated by comparing the present capacity with the original value, which revealed its reduced reservoirs capacity. The reservoirs has a total drainage area of 6,792 ha, with a total capacity of 1,204.09 ha-m, and are short of water supply due to reduction of reservoirs capacity. Annual sedimention in the reservcire is relation to the drainage area, the mean of annual rain fall, and the slop of drainage area. The results of obtained from the investigation are summarized as follow; (1) A sediment deposition rate is very high, being about $9.19{m}^3/ha$ of drainage area, and resulting in the average decrease of reservoir capacity by 19.1%. This high rate of deposition could be mainly attributed to the serve denvdation of forests due to disor derly cuttings of tree. (2) An average unit storage of 415.8mm as the time of initial construation is decreesed to 315.59mm at present, as resultting, we could'nt supply water at 566.24ha. (3) A sediment deposition rate as a relation to the capacity of unit drainage area is as follow; $Qs=1.43 (c/a)^{0.531}$ (4) A sediment deposition rate as a relation to the mean of annval rainfall is as follow; $Qs=672.61 p^{0.024}$ (5) A sediment deposition rate as a relation to the mean slop of drainage area is follow; $Qs=267.21 S^{0.597}$

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