• Title/Summary/Keyword: 종기침투능

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An Experimental Study on the Application Method of Infiltration Trench (침투트렌치 적용방안에 관한 실험적 연구)

  • Kim, Yun-Tae;Jung, Do-Joon;Lee, Hoon;Ko, Taek-Jo
    • Proceedings of the Korea Water Resources Association Conference
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    • 2010.05a
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    • pp.1794-1798
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    • 2010
  • 침투형 우수유출저감시설 중 침투트렌치에 대한 치수효과를 다양한 유입유량을 적용하여 실험하였고 침투량, 유출량, 유출 시작시간, 종기침투능 및 종기침투능에 도달하는 시간 등을 계측하여 정량적으로 분석하고 적용방안을 도출하고자 하였다. 수리실험에 사용된 침투트렌치의 규모는 배수구역을 $130m^2$($6.5m{\times}20m$)로 가정하여 CN을 산정하였으며 그 결과 AMC-I 조건하에서 5개의 침투트렌치수심에 대하여 CN은 트렌치경사 2%일 때 84, 경사 5%일 때 83으로 산정되었고, AMC-III 조건하에서 CN은 트렌치 경사 2%, 5% 모두 84로 산정되었다.

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Analysis of Flood Control Effects of Infiltration Gutter by Field Hydraulic Experiment (현장수리실험을 통한 투수성 침투측구의 치수효과 분석)

  • Lee, Chi-Hun;Lee, Hoon;Ahn, Jae-Chan
    • Proceedings of the Korea Water Resources Association Conference
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    • 2012.05a
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    • pp.171-171
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    • 2012
  • 최근 기후변화에 따른 집중호우로 서울을 비롯한 도시의 대규모 침수사태가 빈번히 발생하고 있다. 이러한 재난의 원인으로는 기록적인 집중호우의 영향도 컸지만 도시개발로 인한 불투수성 면적의 증가로 인하여 초기 우수배재가 이루어지지 않은 부분이 대형피해의 원인이 되었다. 본 연구에서는 침투측구의 치수효과분석을 위하여 선행강우 조건 및 50, 100, 150mm/hr의 3가지 강우사상에 대하여 총 23회에 걸쳐 침투측구에 대한 수리실험을 완료하였고, 침투기능이 없는 일반 측구에 대한 실험도 침투측구 수리실험 조건과 동일하게 수행하여 치수효과를 비교 분석하였다. 침투 측구의 치수효과는 총강우량에 대한 총침투량, 총유출량, 유출시작시간, 종기침투능 및 종기침투능에 도달하는 시간 등을 산정하고 선행강우 조건별로 비교 분석하였다. 수리실험결과 가장 작은 강우강도인 50mm/hr 사상에서 측면에 설치된 침투측구의 치수효과가 가장 크게 나타나는 것으로 분석되어. 침투측구의 경우 유출은 선행강우 조건이 없을 경우 일반 측구의 유출발생시간보다 약 53분 후에 발생하였으며, 선행강우 조건이 있을 경우 약 40분후에 발생하였다. 분석된 결과를 토대로 투수성 침투측구에 대한 투수계수별 CN값을 산정하여 침투측구의 실무 적용방안을 논의하였으며, 본 연구의 결과를 이용하여 풍수해저감을 위한 저감대책을 수립하고, 집중호우에 의해 발생되는 초기우수의 저류에 대한 정량적인 효과분석을 기대할 수 있을 것으로 판단된다.

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Experimental Study on Determination of Infiltration Capacity of Ground Surface and Pervious Pedestrian Blocks (지표면과 투수성 보도 블록의 침투능 결정에 관한 실험적 연구)

  • Yoo, Kyung-Hee;Byeon, Chun-Il;Kim, Kyung-Sup;Ahn, Tae-Jin
    • Journal of the Korean Society of Hazard Mitigation
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    • v.9 no.2
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    • pp.69-76
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    • 2009
  • Infiltration is the process of water penetrating from the ground surface into soil. Infiltration plays an important role on affecting ground water surface and surface flow during rainy season. The amount of infiltration water would be decreased as the urbanization would increase. Such phenomenons would make streamflow decrease or stream run dry. In this study the cumulative infiltration and the infiltration capacity of ground surface have been determined by the field experiment at three sites in the Hankyong National University, Korea. Three type pervious pedestrian blocks of the cumulative infiltration and the infiltration capacity have also been determined at the same site of the ground surface. It has been shown that one of three type blocks in terms of infiltration capacity is almost same as that of ground surface. The Kostiakov type has been adopted to determine the cumulative infiltration and the infiltration capacity for each site. The Horton type has been also adopted to determine the cumulative infiltration and the infiltration capacity. The value of parameter k for each site is determined and soil type would be identified corresponding to the value of parameter.

An Experimental Study on the Application Method of Infiltration Trench (침투트렌치 적용방안에 관한 실험적 연구)

  • Jung, Do-Joon;Ahn, Seung-Sub;Kim, Yun-Tae
    • Journal of the Korean Society of Hazard Mitigation
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    • v.10 no.6
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    • pp.147-154
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    • 2010
  • In this study, flood control effects for infiltration trench which is one of runoff reduction facilities were analyzed based on hydraulic experiments. Hydraulic experiments were conducted using 25 cm diameter circular pipe, and water depths for boundary conditions are 5, 10, 15, 20, 25 cm. Infiltration volume, runoff volume, runoff initiation time, final infiltration capacity and final infiltration capacity reached time etc. were measured from infiltration trench hydraulic experiment. We assumed that drainage area of each infiltration trench is $130\;m^2$ ($6.5\;m{\times}20\;m$) and calculated CN with area based on those experimental characteristics. In AMC-I condition, the calculated CN with five water depths is 84 for 2% pipe slope, 83 for 5% pipe slope. In AMC-III condition, the calculated CN is 84 for 2% and 5% pipe slope.

An Experimental Study on the Analysis of Infiltration Capacity of the Permeable Block (투수성 보도블록의 침투능 분석에 관한 실험적 연구)

  • Lee, Hoon;Jung, Do-Joon;Kim, Young-Bok;Kim, Yun-Tae
    • Journal of the Korean Society of Hazard Mitigation
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    • v.9 no.4
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    • pp.99-106
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    • 2009
  • This research was to estimate quantitative infiltration volume of permeable block which is one of runoff reduction infiltration facilities. In this research, the permeable block experiments estimating infiltration volume for 50, 100, 150, 200 mm/hr rainfall intensity were carried out and hydraulic experiments results were compared with numerical simulation output to produce feasibility of numerical simulation. Final infiltration capacity analysis of permeable block hydraulic experiments reveals that every estimated infiltration volume before runoff beginning was above approximately 300.0 l despite rapid reduction of infiltration ratio and runoff initiation time were occurred in every rainfall intensity. Statistical calculation for coefficient of determination based on cumulative infiltration volume of hydraulic experiment and numerical simulation resulted in a high correlationship as $0.958{\sim}0.996$.

A Study on a Runoff Coefficient of Block Paved Area with Considering Regional Rainfall Distribution (지역별 강우분포를 고려한 블록포장지역의 유출계수 산정에 관한 연구)

  • Kang, Shin-Kweon;Kim, Tae-Gyun
    • Journal of the Korean Institute of Landscape Architecture
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    • v.36 no.4
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    • pp.111-119
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    • 2008
  • The runoff coefficient for a block paved area is determined with regional rainfall distribution. The Rational Method is a basic equation of a drainage system design and is a function of runoff coefficient, rainfall intensity and area. A runoff coefficient is the ratio of rainfall intensity and runoff. The rainfall intensity which is a function of the return period and rainfall duration differs by region. Therefore the runoff coefficient varies regionally even though there is the same return period and rainfall duration. The ratio of rainfall intensity and rainfall duration is decided by the loss of rainfall. The constant infiltration capacity of Horton's equation is adopted to determine the loss of rainfall. As time passed, the joint of the block paved area through which the infiltration occurs is covered by pollution material, sandy dust, pollen and is hardened by foot pressure, so the constant infiltration capacity may decrease. Six different sites were selected to verify the assumption of the constant infiltration capacity decrease and 10 year return period. 10, 20, and 30 minute rainfall duration were applied to calculate rainfall intensity. The results indicate that the Horton's constant infiltration capacity decreases over time and the minimum constant infiltration capacity is selected to compute runoff coefficients. The runoff coefficients varied by region ranging from $0.94{\sim}0.84$ for 10 minute of rainfall duration.

Optimal Determination of the Parameters Representative of a Basin in the Horton's Infiltration Model (유역을 대표하는 Horton 침투 모형내 매개변수의 최적 결정)

  • Yoo, Ju-Hwan
    • Journal of Korea Water Resources Association
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    • v.39 no.11 s.172
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    • pp.977-984
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    • 2006
  • The parameters in the Horton's model which has well known as typical infiltration model were determined by the use of the optimization technique. It was assumed the initial infiltration capacity in this model was related to the antecedent precipitation per 10 days with linear combination. And both the parameters of the ultimate infiltration capacity and the decay factor were determined uniquely on a basin. Thus the optimal model's parameters representative to a basin were obtained and the Horton's infiltration equations by rainstorm events were determined. The data of ten rainstorm events for this study were observed at the Jeonjeokbigyo station located at the Selmacheon experimental basin that was $8.5km^2$ wide in the Imjin river.