• 제목/요약/키워드: hydraulic-geometry

검색결과 206건 처리시간 0.02초

2.5 kW 급 프로펠러형 마이크로 수차 개발 (Development of 2.5 kW Class Propeller Type Micro Hydraulic Turbine)

  • 마상범;김성;최영석;차동안;김진혁
    • 한국수소및신에너지학회논문집
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    • 제31권3호
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    • pp.314-321
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    • 2020
  • In this work, a preliminary design of an inlet guide vane and runner for developing a 2.5 kW hydraulic turbine was conducted by using computational fluid dynamic analysis. Three-dimensional Reynolds-averaged Navier-Stokes equations with shear stress transport turbulence model were used to analyze the fluid flow in the hydraulic turbine. The hexahedral grid system was used to construct computational domain, and the grid dependency test was performed to obtain the optimal grid system. Velocity triangle diagram considering the flow angles of the inlet guide vane and runner was analyzed to obtain a basic geometry of the inlet guide vane and runner. Through modification of the preliminary design, the hydraulic performances of the turbine have improved under overall drop conditions. Especially, the efficiency and power of the turbine increased by 0.95% and 1.45%, respectively, compared to those of the reference model.

자동차 밀폐형 워터펌프의 토출구 형상이 수력성능에 미치는 영향 (Effect of Shape of Discharge Port on Hydraulic Performance of Automotive Closed Type Water Pump)

  • 허형석;이기수;배석정
    • 한국자동차공학회논문집
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    • 제14권1호
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    • pp.39-47
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    • 2006
  • Recent trend in pursuit of high performance and effectiveness for automotive cooling system has changed the application of material for impeller of automotive water pump from metal to high ability engineering resin, which can achieve optimization of design of impeller geometry and realize lightweight high efficiency water pump. Closed type water pump improves hydraulic loss of fluid through the clearance between volute casing and impeller compared with that of the existing open type water pump(Although closed type is heavier than open type for the same size and same material, adoption of plastics can solve the problem.). In the present study, the characteristics of hydraulic performance of closed type water pump were investigated with respect to the angle between shroud and hub of impeller and the shape of discharge port of volute casing. Performance tests were carried out for 4 cases, that is, for 2 impellers and 2 casings. The modification of shape of only discharge port can enhance the hydraulic performance by 10 percent and the pump efficiency by 4-6 percent.

Evaluation of Injection capabilities of a biopolymer-based grout material

  • Lee, Minhyeong;Im, Jooyoung;Chang, Ilhan;Cho, Gye-Chun
    • Geomechanics and Engineering
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    • 제25권1호
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    • pp.31-40
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    • 2021
  • Injection grouting is one of the most common ground improvement practice to increase the strength and reduce the hydraulic conductivity of soils. Owing to the environmental concerns of conventional grout materials, such as cement-based or silicate-based materials, bio-inspired biogeotechnical approaches are considered to be new sustainable and environmentally friendly ground improvement methods. Biopolymers, which are excretory products from living organisms, have been shown to significantly reduce the hydraulic conductivity via pore-clogging and increase the strength of soils. To study the practical application of biopolymers for seepage and ground water control, in this study, we explored the injection capabilities of biopolymer-based grout materials in both linear aperture and particulate media (i.e., sand and glassbeads) considering different injection pressures, biopolymer concentrations, and flow channel geometries. The hydraulic conductivity control of a biopolymer-based grout material was evaluated after injection into sandy soil under confined boundary conditions. The results showed that the performance of xanthan gum injection was mainly affected by the injection pressure and pore geometry (e.g., porosity) inside the soil. Additionally, with an increase in the xanthan gum concentration, the injection efficiency diminished while the hydraulic conductivity reduction efficiency enhanced significantly. The results of this study provide the potential capabilities of injection grouting to be performed with biopolymer-based materials for field application.

압력에 따른 균열 간극변화와 수리전도도 변화 관찰 (The Changes of Aperture Variation and Hydraulic Conductivity for Compression Variability)

  • 채병곤;이철우;정교철;김용제
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제8권4호
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    • pp.1-11
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    • 2003
  • 압축력의 변화에 따른 균열 간극변화 양상을 측정하고 간극변화와 수리전도도와의 관계를 파악하기 위해 이 연구에서는 다섯 단계의 수직 일축압축력을 균열면에 연속적으로 가하면서 고해상도의 공초점 레이저 스캔 현미경 (confocal laser scanning microscope; CLSM)을 이용하여 간극의 크기를 측정하고 디지털 이미지를 획득하였다. 기존의 연구들과는 달리 이 연구의 측정방법은 압력변화에 대한 동일시료 간극의 반응을 연속적으로 파악할 수 있는 점이 특징이다. 측정결과는 간극크기가 일정하지 않은 불평탄한 균열형태를 매우 잘 나타내었다. 균열 조도(roughness)로 인해 압력에 따른 간극 변화량은 일정하지 않고 부분마다 다름을 보였다. 각 압력단계에서 간극변화에 따른 투수성 변화양상을 파악하고자 실내투수시험을 병행하여 실시한 결과, 각 압력단계에서의 투수성 변화도 일정한 감소율을 나타내지 않고 간극 변화율이 크더라도 투수율은 오히려 작은 경우도 관찰되었다. 현미경을 통해 측정한 물리적 간극과 실제 유체유동 경로가 되는 수리간극의 크기 차이를 파악하기 위해 계산을 한 결과, 미미한 갈이지만 물리적 간극보다 작은 크기의 수리간극이 구해졌다. 또한, 실내투수시험 결과를 이용하여 구한 투수계수는 삼승법칙을 따르지 않는 것으로 드러났으며, 이러한 사실들은 균열 양쪽이 서로 평행하지 않고 불평탄한 양상을 가짐을 의미하는 것으로서, 현미경을 통해 직접 관찰한 간극양상과 잘 일치하는 것이다.

스윕을 가진 냉각탑용 축류홴의 성능 특성에 관한 수치해석적 연구 (Numerical Investigation of Performance Characteristics for Cooling Tower Axial Fans with Sweep)

  • 오건제
    • 동력기계공학회지
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    • 제13권4호
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    • pp.31-37
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    • 2009
  • The purpose of this numerical study was to investigate performance characteristics for cooling tower axial fans with sweep. Performance data for the fans with various sweep angles were obtained in terms of the setting angle at a constant flow rate. Viscous flow calculations were carried out to obtain Performance data of the total pressure rise and hydraulic efficiency. A solution of the Ffowcs Williams-Hawkings equations was used to calculate the sound pressure level at three times fan diameter away from the fan. The calculated performance data well represented performance characteristics of the cooling tower axial fan. The total pressure rise and hydraulic efficiency at the same setting angle decreased with sweep angle. Sound pressure level slightly decreased for the fan with a sweep angle of 10 degree. No significant effect of the sweep geometry was found on the sound pressure level.

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SWMM을 이용한 비점오염원 관리 저류지의 오리피스 설계기법 연구 (Detention Orifice Design for Non-point Source Management Using SWMM)

  • 조선주;김상단
    • 한국물환경학회지
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    • 제28권5호
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    • pp.686-692
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    • 2012
  • This study illustrates how to design and evaluate a non-point sources management detention pond using SWMM. In particular, special attention is given to the orifice design. In SWMM, orifice properties that need to be defined include its height above the bottom of the storage unit, its type, its geometry and its hydraulic properties. Among the various characteristics of orifice, the orifice hole size which is closely related to hydraulic retention time is focused in this study. Sensitivity analysis of orifice size in annual non-point sources reduction efficiency is carried out. In addition, a methodology which can be used to design a virtual junction in SWMM has been proposed to quantify water quality improvement triggered by the detention pond installation. As a result, it is recommended that a detention outlet should be designed to be about 2 to 3 days of hydraulic retention time.

OPTIMIZED NUMERICAL ANNULAR FLOW DRYOUT MODEL USING THE DRIFT-FLUX MODEL IN TUBE GEOMETRY

  • Chun, Ji-Han;Lee, Un-Chul
    • Nuclear Engineering and Technology
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    • 제40권5호
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    • pp.387-396
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    • 2008
  • Many experimental analyses for annular film dryouts, which is one of the Critical Heat Flux (CHF) mechanisms, have been performed because of their importance. Numerical approaches must also be developed in order to assess the results from experiments and to perform pre-tests before experiments. Various thermal-hydraulic codes, such as RELAP, COBRATF, MARS, etc., have been used in the assessment of the results of dryout experiments and in experimental pre-tests. These thermal-hydraulic codes are general tools intended for the analysis of various phenomena that could appear in nuclear power plants, and many models applying these codes are unnecessarily complex for the focused analysis of dryout phenomena alone. In this study, a numerical model was developed for annular film dryout using the drift-flux model from uniform heated tube geometry. Several candidates of models that strongly affect dryout, such as the entrainment model, deposition model, and the criterion for the dryout point model, were tested as candidates for inclusion in an optimized annular film dryout model. The optimized model was developed by adopting the best combination of these candidate models, as determined through comparison with experimental data. This optimized model showed reasonable results, which were better than those of MARS code.

정압주입시험을 이용한 지하수유동차원 해석 (Flow Dimensional Analysis for Constant Pressure Injection Test)

  • 이은용
    • 지질공학
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    • 제3권2호
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    • pp.149-165
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    • 1993
  • 지하매질의 유동특성을 알기 위한 직접적인 방법은 아직도 현장수리시험에 의존하고 있다. 열극암반에서 유동모델의 개념정립을 위하여는 열극체계분포와 특히, 수리시험해석결과가 중요시되고 있다. 국내에서 수행되고 있는 수리시험은 조사공구간별에 따른 수리전도도를 방사상의 정상류로 가정하여 결과를 해석하고 있다. 또한 시험대상 매질을 균질한 대수층 또는 단순한 기하학적 형태의 매질로 간주하며 구간별 투수량계수는 시험구간을 가로지르는 각 열극의 투수량계수의 합과 같다고 가정한다. 국내 기존의 수리시험 및 해석방법으로는 수리학적 경계면의 영향(boundary effects)이나 유동로의 기하학적 형태(flow geometry)에 대한 자료를 얻기가 힘들며, 일정한 조사공 주변을 벗어나면 투수성열극의 연결성에 대한 정보를 구할 수 없다. 열극특성을 고려한 지하수유동 해석을 위하여 단일공 정압주입시험을 실시하였으며, 비정상류해석방법을 통하여 유동차원(flow dimension)에 대한 분석을 시도하였다. 시추시에는 단일패커시험을 일정구간별로 시행하였으며, 조사공의 시추후에는 이중패커에 의한 구간별 시험을 실시하였다. 비정상류해석으로 구한 수리전도도값은 정상류해석의 결과와 큰 차이(10배 이내)는 없었으나, 정압하에서 도출된 유동량변화곡선에서 유동차원분석이 가능하였다. 상부구간(<10m 깊이)의 단일 및 이중패커시험결과는 모두 정상류의 유동차원이 나타났으며, 이는 영향반경의 경계면이 open system임을 알 수 있다. 15m 깊이에서 도출된 유동량변화곡선은 1차원 유동상태에서 3차원(구상유동)으로 변화하였다. 하부구간(25m 깊이)의 시험결과는 closed system 특성이 관찰되었으며, 이는 조사구간에서 연결된 열극이 수리적으로 격리되어 있음을 알 수 있다. 현장수리시험으로부터 보다 많은 자료를 도출하기 위하여는 무엇보다도 수리시험장비의 보완이 필요하다. 특히 조사구간을 완벽하게 분리할 수 있는 패커장비와 미세한 유동량변화를 계측할 수 있는 유량계의 확보가 필수적이며, 조사구간의 압력변화를 자동기록할 수 있는 계측기기가 필요하였다.

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Power upgrading of WWR-S research reactor using plate-type fuel elements part I: Steady-state thermal-hydraulic analysis (forced convection cooling mode)

  • Alyan, Adel;El-Koliel, Moustafa S.
    • Nuclear Engineering and Technology
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    • 제52권7호
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    • pp.1417-1428
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    • 2020
  • The design of a nuclear reactor core requires basic thermal-hydraulic information concerning the heat transfer regime at which onset of nucleate boiling (ONB) will occur, the pressure drop and flow rate through the reactor core, the temperature and power distributions in the reactor core, the departure from nucleate boiling (DNB), the condition for onset of flow instability (OFI), in addition to, the critical velocity beyond which the fuel elements will collapse. These values depend on coolant velocity, fuel element geometry, inlet temperature, flow direction and water column above the top of the reactor core. Enough safety margins to ONB, DNB and OFI must-emphasized. A heat transfer package is used for calculating convection heat transfer coefficient in single phase turbulent, transition and laminar regimes. The main objective of this paper is to study the possibility of power upgrading of WWR-S research reactor from 2 to 10 MWth. This study presents a one-dimensional mathematical model (axial direction) for steady-state thermal-hydraulic design and analysis of the upgraded WWR-S reactor in which two types of plate fuel elements are employed. FOR-CONV computer program is developed for the needs of the power upgrading of WWR-S reactor up to 10 MWth.