Sediment load deposited in sewers and manholes reduces not only the capacity of pipes but also the efficiency of the whole sewer system. This causes the inundations of the low places and overflows at manholes, Moreover, sulfides and bad odor can occur due to deposited sediment with organic loads in manholes. Movements of sediment load in manholes are complicated depending on manhole size, location, inside structure, sediment load type, and time. Therefore, it is necessary to understand the movements of sediment load in manholes by experiments. In this study, experiments were implemented by a square manhole with straight path to measure deposited sedimentation quantity. The experimental apparatus was consisted of a high water tank, an upstream tank, test pipes, a sediment supplier, a manhole, and a downstream tank to measure the experimental discharge. The quantity of deposited sediment load was measured by different conditions, such as the inflow condition of sediment(continuous and certain period), the amount of inflow sediment, discharge, and the type of sediment. Jumoonjin sand(S=2.63, D50=0.55mm), general sand(GS, S=2.65, D50=1.83mm) and anthracite (S=1.45, D50= 0.80mm) were employed for the experiment. The velocities in inflow pipe were 0.45 m/s, 0.67 m/s, and 0.9 m/s. Sediment load movement and sedimentation quantity in manhole were influenced by many factors such as velocity, shear stress, viscosity, amount of sediment, sediment size, and specific gravity. Suggested regression equations can estimated the quantity of deposited sediment in the straight path square manholes. The connoted equations that were evaluated through the experimental study have velocity range from 0.45 to 0.9m/sec. The study results illustrates that appropriation of design velocity ragne between 1.0 and 2.0m/sec could implement to maintain and manage manholes.
Energy loss at manholes, often exceeding friction loss of pipes under surcharged flow, is considered as one of the major causes of inundation in urban area. Therefore, it is important to analyze the head losses at manholes, especially in case of surcharged flow. The stream characteristics were analyzed and head loss coefficients were estimated by using the computational fluid dynamics(CFD) model, FLUENT 6.3, at surcharged square manhole in this study. The CFD model was carefully assessed by comparing simulated results with the experimental ones. The study results indicate that there was good agreement between simulation model and experiment. The CFD model was proved to be capable of estimating the head loss coefficients at surcharged manholes. The head loss coefficients with variation of the ratio of manhole width(B) to inflow pipe diameter(d) and variation of the drop height at surcharged square manhole with a straight-path through were calculated using FLUENT 6.3. As the ratio of B/d increases, head loss coefficient increases. The depth and head loss coefficient at manhole were gradually increased when the drop height was more than 5cm. Therefore, the CFD model(Fluent 6.3) might be used as a tool to simulate the water depth, energy losses, and velocity distribution at surcharged square manhole. 요 지 도시 우수 배수 시스템에서 우수 관거는 개수로 흐름 상태로 가정하여 설계되었기 때문에 맨홀에서의 에너지 손실은 일반적 으로 중요하게 고려되지 않았다. 그러나 과부하흐름에서 에너지 손실은 관거의 배수능력을 저하시켜 도심지역의 침수피해를 가 중시키는 요인이 된다. 그러므로 과부하 사각형 맨홀 내에서의 수두 손실을 분석할 필요가 있다. 본 연구에서는 FLUENT 6.3 모형을 이용하여 과부하 사각형 합류맨홀에서의 흐름특성을 모의하고 맨홀 내 손실수두의 변화를 계산하여 손실계수를 산정하 였다. 또한 실험결과와 수치모의 결과를 비교 및 분석하여 사각형 맨홀에서의 손실계수 산정에 FLUENT 6.3모형의 적용성을 확인하였다. 맨홀 폭(B)과 연결관경(d)의 비(B/d)에 따른 손실계수를 산정하였다. B/d가 증가할수록 사각형 합류 맨홀에서의 손 실계수는 증가하였다. 중간 단차 맨홀에서 단차 변화에 따른 손실계수의 변화를 산정하였다. 단차가 5 cm이상 증가하면 맨홀 내 수심과 손실계수가 점진적으로 증가하였으므로 중간 맨홀에서의 적정 단차는 5 cm로 판단된다. 따라서 우수 관거 시스템의 여러 형태의 사각형 맨홀에서의 흐름의 변화 및 손실계수를 예측할 때, Fluent 6.3 모형은 사용 가능하리라 판단된다. 핵심용어 : 손실계수, 과부하 맨홀, CFD 모형, 우수 배수 시스템 ·································································································································································································································· 1. 서 론 도시 지역에서 해마다 반복되는 여름철의 집중호우로 인한 홍수재해 뿐만 아니라 국지적인 집중호우로 인한 많은 피해 가 발생하고 있다. 국지적인 집중호우는 하천 연안이나 유출 량이 급격하게 증가하는 저지대와 하수관거의 불량 및 용량 부족지역을 중심으로 침수피해를 상습적으로 발생시키고 있 다. 도시 지역에서의 빗물은 도로 배수시설 및 우수 관거 시 설에 의하여 배수된다. 우수 관거 시설은 관거, 맨홀, 우수토 실, 물받이(오수, 우수, 집수받이) 및 연결관 등을 포함하는 시설들로 구성되어 있다. 맨홀은 관거의 기점, 방향, 경사 및 관경 등이 변하는 곳, 단차가 발생하는 곳, 관거가 합류하는 곳이나 관거의 유지 관리상 필요한 장소에 반드시 설치한다. 또한 흙 두께가 적은 경우, 관거 중간지점에서 원형 맨홀이
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