• Title/Summary/Keyword: k-${\varepsilon}$ 난류모형

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Numerical analysis of turbulent flows in the helically coiled pipes of heat transfer (열교환기의 나선형 관내 난류유동 수치해석)

  • Kwag, Seung-Hyun
    • Journal of Advanced Marine Engineering and Technology
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    • v.37 no.8
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    • pp.905-910
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    • 2013
  • The flow analysis has been made by applying the turbulent models in the helically coiled tubes of heat transfer. The k-${\varepsilon}$ and Spalart-Allmaras turbulent models are used in which the structured grid is applied for the simulation. The velocity vector, the pressure contour, the change of residuals along the iteration number and the friction factors are simulated by solving the Navier-Stokes equations to make clear the Reynolds number effect. The helical tube increases the centrifugal forces by which the wall shear stress become larger on the outer side of the tube. The centrifugal force makes the heat transfer rate locally larger due to the increase of the flow energy, which finds out the close relationship between the pressure drop and friction factor in the internal flow. The present numerical results are compared with others, for example, in the value of friction factor for validation.

Drag Coefficient Estimation of Pile Type Structures by Numerical Water Basin Experiments (수조 수치실험에 의한 말뚝구조물의 항력계수 산정)

  • Park, Il-Heum;Lee, Geun-Hyo;Cho, Young-Jun
    • Journal of Korean Society of Coastal and Ocean Engineers
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    • v.21 no.1
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    • pp.45-53
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    • 2009
  • A possibility of the drag coefficient estimation in numerical water basins was discussed where the numerical solution were calculated by the 3-dimensional hydro-dynamical model (FLOW-$3D^{(R)}$) with the RNG $k-{\varepsilon}$ turbulence model. On the known cases of the drag coefficients for a rectangle, the numerical drag coefficients got $1.34{\sim}1.52$ and the wind tunnel values were $1.3{\sim}1.5$. For a cylinder, the numerical values were calculated as $0.75{\sim}0.78$ in the range of 0.5

Numerical Simulation of Separation using RANS model in Curved Channel (RANS를 이용한 곡선 수로에서 박리 현상 모의)

  • Lee, Seonmin;Choi, Sung-Uk
    • Proceedings of the Korea Water Resources Association Conference
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    • 2016.05a
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    • pp.63-63
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    • 2016
  • 자연 하천은 연속적인 곡선 흐름을 가지고 있으며, 하천의 흐름을 해석하는 것은 복잡하고 어려운 일이다. 게다가 자연하천에서는 유사이송에 의해 하상변동이 발생하며 이를 정확하게 예측하는 것은 공학적 문제 해결에 중요한 역할을 한다. 곡선 흐름에서의 하상변동양상은 원심력에 의한 이차류로 인하여 유사가 하천의 내측으로 이동하게 되고, 하천의 외측에는 침식, 내측에는 퇴적이 된다. 이와 같은 현상은 원심력뿐만이 아니라 하천의 곡선에 의해 발생하게 되는 박리 또한 중요한 원인으로 이야기 되고 있으며, 선행 연구자들에 의해서 박리의 영향이 작지 않음을 알 수 있다. 자연하천에서의 정확한 하상변동을 예측하기 위해서는 원심력에 의한 이차류와 박리의 현상을 정확히 모의할 수 있어야하며, 이를 위해 3차원 모형이 필요하다. 따라서 본 연구에서는 3차원 unsteady RANS 모형을 이용하여 곡선수로에서 박리가 발생하는 현상을 모의하고자 한다. 곡선수로를 모의하기 위해서 곡선좌표계를 사용하였으며, 난류모형으로는 standard $k-{\varepsilon}$$k-{\omega}$ SST을 사용하였다. 또한 fractional step method를 이용하여 유속과 압력 커플링을 하였다. 그 결과 곡선수로의 흐름모의에서 레이놀즈 수가 큰 경우 박리가 발생하는 것을 확인하였으며, 두 난류모형 모두 곡선 흐름에서의 박리 현상을 모의할 수 있었다.

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Analysis of Hydraulic effects on Piers and Transverse Overflow Type Structures in Urban Stream (도시하천의 교각 및 횡단 월류형 구조물에 의한 수리영향 분석)

  • Yoon, Sun-Kwon;Chun, Si-Young;Kim, Jong-Suk;Moon, Young-Il
    • Journal of Korea Water Resources Association
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    • v.41 no.2
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    • pp.197-212
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    • 2008
  • Recently, stream flow analysis has been accomplished by one or two dimensional equations and was applied by simple momentum equations and fixed energy conservations which contain many condition limits. In this study, FLOW-3D using CFD (Computational Fluid Dynamics) was applied to stream flow analysis which can solve three dimensional RANS (Reynolds Averaged Navier-Stokes Equation) control equation to find out physical behaviors and the effect of hydraulic structures. Numerical simulation accomplished those results was compared by using turbulence models such as ${\kappa}-{\varepsilon}$, RNG (Renormalized Group) ${\kappa}-{\varepsilon}$ and LES (Large Eddy Simulation). Numerical analysis results have been illustrated by the turbulence energy effects, velocity of flow, water level pressure and eddy flows around the piers and transverse overflow type structures. These results will be able to used by basis data that catch hold of effects on long-term bed elevation changes, sediment accumulations, scours and water aggravations by removal of obsolete transverse over flow type structures in urban stream.

A New k-$\varepsilon$ Model for Prediction of Transitional Boundary-Layer Under Zero-Pressure Gradient (압력 구배가 없는 평판 천이 경계층 유동을 예측하기 위한 k-$\varepsilon$모형의 개발)

  • Baek, Seong-Gu;Im, Hyo-Jae;Jeong, Myeong-Gyun
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.25 no.3
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    • pp.305-314
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    • 2001
  • A modified model is proposed for calculation of transitional boundary layer flows. In order to develop the eddy viscosity model for the problem, the flow is divided into three regions; namely, pre-transition region, transition region and fully turbulent region. The pre-transition eddy-viscosity is formulated by extending the mixing length concept. In the transition region, the eddy-viscosity model employs two length scales, i.e., pre-transition length scale and turbulent length scale pertaining to the regions upstream and the downstream, respectively, and a universal model of stream-wise intermittency variation is used as a function bridging the pre-transition region and the fully turbulent region. The proposed model is applied to calculate three benchmark cases of the transitional boundary layer flows with different free-stream turbulent intensity (1%∼6%) under zero-pressure gradient. It was found that the profiles of mean velocity and turbulent intensity, local maximum of velocity fluctuations, their locations as well as the stream-wise variation of integral properties such as skin friction, shape factor and maximum velocity fluctuations are very satisfactorily predicted throughout the flow regions.

A low-Reynolds-number 4-equation heat transfer model for turbulent separated and reattaching flows (난류 박리 및 재부착 유동의 해석을 위한 저레이놀즈수 4-방정식 난류 열전달 모형의 개발)

  • Rhee Gwang-Hoon;Sung Hyung-Jin
    • 한국전산유체공학회:학술대회논문집
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    • 1995.10a
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    • pp.37-42
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    • 1995
  • In the present study, an improved version of 4-equation low-Reynolds-number 4-equation model is proposed. The equations of the temperature variance ($k_{\theta}$) and its dissipation rate(${\varepsilon}_{\theta}$) are solved, in concert with the equations of the turbulent kinetic energy(k) and its dissipation rate(${\varepsilon}$). In the present model, the near-wall effect and the non-equilibrium effect are fully taken into consideration. The validation of the model is then applied to the turbulent flow behind a backward-facing step and the flow over a blunt body. The predicted results of the present model are compared and evaluated with the relevant experiments.

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A Three-Dimensional Numerical Model of Circulation and Heat Transport in Coastal Region (연안 해수유동 및 온배수 확산에 관한 3차원 수치모형)

  • 정태성;이길성
    • Journal of Korean Society of Coastal and Ocean Engineers
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    • v.6 no.3
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    • pp.245-259
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    • 1994
  • This paper is concerned with the development of a three-dimensional numerical model for coastal circulation and heat transport with improved prediction ability. The model uses fully nonlinear, time-dependent three-dimensional, $\sigma$-transformed equations of motion and equation of heat transport The model was verified with experimental data for wind-driven current in a one-dimensional channel and thermal jets flowing into stagnant waters and applied for unsteady flow induced by tide and thermal jets in coastal waters around Kori nuclear power plant. The model results were in good agreements with experimental data sets for wind-driven current and thermal jet, and field observed data sets in coastal waters. This study has shown that the $\kappa$-$\varepsilon$ turbulence model is applicable to various coastal conditions without any modification of turbulence constants.

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A Three-Dimensional Numerical Analysis of In-Cylinder Flows in Reciprocating Model Engine (3차원 모형기관 실린더내의 흡입과정 유동에 대한 수치해석)

  • 하각현;김원갑;최영돈
    • Transactions of the Korean Society of Automotive Engineers
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    • v.2 no.3
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    • pp.1-12
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    • 1994
  • A model engine having a flat cylinder head and a piston face and an off-center intake valve is investigated in this analysis. Calculation domain is confined to the half of the cylinder with swirl free inlet velocity condition. Due to the absence of measured inlet conditions, the inlet flowrates during induction period are calculated from overall mass and energy conservation requirements. Finite difference equation for velocity and pressure were solved by modified SIMPLER algorithm, standard k-$\varepsilon$turbulence model and hybrid scheme. From the result of prediction, dimensionless velocity distribution and turbulence intensities are investigated at each crank angle.

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Wave Breaking of Sinusoidal Waves in the Surf Zone (쇄파대에서 정현파의 쇄파)

  • Hwang, Jong-Kil;Lee, Seung-Hyeob;Cho, Yong-Sik
    • Proceedings of the Korea Water Resources Association Conference
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    • 2004.05b
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    • pp.1429-1433
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    • 2004
  • 본 연구에서는 쇄파대에서 정현파의 쇄파에 대해 수리모형실험과 수치모형실험을 수행하였다. 수치해석 모형에서는 Reynolds 방정식을 지배방정식으로 사용하고 난류해석을 위해 $k-\varepsilon$모델을 적용하였으며, 자유수면변위를 추적하기 위해 VOF기법을 사용하져다. 사면 및 평탄지형상에서 발생하는 쇄파양상을 서로 다르게 설정하기 위해 수심과 입사파의 주기와 파고를 변화시킨다. 발생된 정현파의 파형은 해석해와 잘 일치하였으며, 입사파와 파고계가 설치된 위치에서 측정된 파고비 $H/H_0$는 관측값과 비교해 본 길과 놀은 정확도를 나타내었다.

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A Study on the Improvment of Engine Performance Simulation Using Multi-Length-Scale Model and MOC (특성곡선법과 다중길이 척도법을 이용한 가솔린 기관의 기관성능시뮬레이션 개선에 관한 연구)

  • 김철수
    • Journal of Advanced Marine Engineering and Technology
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    • v.25 no.3
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    • pp.605-616
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    • 2001
  • Generally, there are two methods in researching internal combustion engines. One is by experimental research and the other is by computer simulation. The experimental research has many merits that researchers can get data for engine performance, but it has also some demerit of cost and time. If there is an engine simulation code with accuracy for the solution, it is very convenient to predict the performance and optimum design value of the engine. In this study, engine performance simulation program has been improved to predict the transient variation of properties of gas in cylinder, intake and exhaust manifolds, There total program code was developed to calculate the pressure, flame factor and turbulent intensity, As a result of present study, the authors could predicted the in-cylinder pressure, intake manifold pressure and the engine performance in various conditions. The authors also could easily prepare the tool if optimum design of manifold and in-cylinder geometry.

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