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우수유출저감을 위한 간선저류지 위치선정에 관한 연구

A study on the determination of location of the detention pond in trunk sewer for reducing runoff amounts

  • Lee, Sung Ho (Department of Civil Engineering, Kumoh National Institute of Technology) ;
  • Yoon, Sei Eui (Department of Civil Engineering, Kyonggi University) ;
  • Lee, Jae Joon (Department of Civil Engineering, Kumoh National Institute of Technology)
  • 투고 : 2017.02.14
  • 심사 : 2017.03.07
  • 발행 : 2017.04.30

초록

도시화 및 산업화로 인한 도시지역의 불투수율의 증가와 국지성 호우로 인하여 도시지역의 홍수에 대한 방어능력이 취약하게 되었다. 도시지역의 홍수피해 저감을 위하여 저류지와 침투시설을 포함한 각종 우수유출저감시설이 적용되고 있다. 그러나 국내 대도시의 경우 우수유출저감시설 설치를 위한 부지 확보가 어렵고 노후화된 관거 개선을 위한 예산확보도 어려운 실정이므로 도심지의 치수능력 향상과 예산을 절감시킬 수 있는 기존 우수관거를 연계한 저류시스템(이것을 간선저류지라 부르기로 한다)의 설계가 필요하다고 판단된다. 본 연구에서는 세 가지 형상(세장형, 중앙형, 집중형)의 가상유역을 대상유역으로 선정하여 기존 우수관거를 연계한 저류시스템인 간선저류지를 유역 내의 임의의 위치에 설치하였을 경우 간선저류지의 용량에 따른 우수유출저감효과를 분석하였다. 간선저류지는 6가지의 용량($1,000m^3$, $3,000m^3$, $5,000m^3$, $10,000m^3$, $20,000m^3$, $30,000m^3$)으로 설정하였고, 우수유출저감효과를 분석하기 위한 저류지의 설치위치는 전체 유역면적에 대한 저류지 상류부 면적의 비를 각각 20%, 40%, 60%, 80%로 변화시키면서 설치위치를 다양하게 적용하여 대상유역의 우수유출저감효과를 분석하였다. 또한 도출된 결과를 이용하여 간선저류지 설치위치에 따른 관계도 및 관계식을 제시하였다.

The ability to defend against floods in urban areas was weakened, because the increase in the impervious rate of urban areas due to urbanization and industrialization and the increase in the localized torrential rainfall due to abnormal climate. In order to reduce flood damage in urban areas, various runoff reduction facilities such as detention ponds and infiltration facilities were installed. However, in the case of domestic metropolitan cities, it is difficult to secure land for the installation of storm water reduction facilities and secure the budget for improving the aged pipelines. Therefore, it is necessary to design a storage system (called the detention pond in trunk sewer) that linked the existing drainage system to improve the flood control capacity of the urban area and reduce the budget. In this study, to analyze the effect of reducing runoff amounts according to the volume of the detention pond in trunk sewer, three kinds of virtual watershed (longitudinal, middle, concentration shape) were assumed and the detention pond in trunk sewer was installed at an arbitrary location in the watershed. The volume of the detention pond in trunk sewer was set to 6 cases ($1,000m^3$, $3,000m^3$, $5,000m^3$, $10,000m^3$, $20,000m^3$, $30,000m^3$), and the installation location of the detention pond in trunk sewer was varied to 20%, 40%, 60%, and 80% of the detention pond upstream area to the total watershed area (DUAR). Also, using the results of this study, a graph of the relationship and relational equation between the volume of the detention pond in trunk sewer and the installation location is presented.

키워드

참고문헌

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