• 제목/요약/키워드: volume-averaged RANS

검색결과 56건 처리시간 0.019초

2차원 날개단면의 앞날 형상 변화에 따른 캐비테이션 특성 연구 (Influence of the Leading Edge Shape of a 2-Dimensional hydrofoil on Cavitation Characteristics)

  • 송인행;안종우;문일성;김기섭
    • 대한조선학회논문집
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    • 제37권1호
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    • pp.60-66
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    • 2000
  • 고속 프로펠러를 대상으로 캐비테이션 발생 특성에 가장 큰 영향을 미치는 2차원 날개단면의 앞날 형상에 관한 연구를 수행하였다. 앞날 주위의 유동장을 해석하기 위하여 비압축성 RANS(Reynolds Averaged Navier-Stokes)방정식을 유한체적법(FVM)으로 차분하는 수치해석기법을 사용하였다. 또한 패널법을 이용하여 캐비테이션 발생두께를 예측하였다. 예측된 결과들은 실험결과와 비교해서 타당함을 알 수 있었으며, 이 결과를 이용하여 새로운 단면을 설계하였다.

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Free Surface Flow in a Trench Channel Using 3-D Finite Volume Method

  • Lee, Kil-Seong;Park, Ki-Doo;Oh, Jin-Ho
    • 한국수자원학회논문집
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    • 제44권6호
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    • pp.429-438
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    • 2011
  • In order to simulate a free surface flow in a trench channel, a three-dimensional incompressible unsteady Reynolds-averaged Navier-Stokes (RANS) equations are closed with the ${\kappa}-{\epsilon}$ model. The artificial compressibility (AC) method is used. Because the pressure fields can be coupled directly with the velocity fields, the incompressible Navier-Stokes (INS) equations can be solved for the unknown variables such as velocity components and pressure. The governing equations are discretized in a conservation form using a second order accurate finite volume method on non-staggered grids. In order to prevent the oscillatory behavior of computed solutions known as odd-even decoupling, an artificial dissipation using the flux-difference splitting upwind scheme is applied. To enhance the efficiency and robustness of the numerical algorithm, the implicit method of the Beam and Warming method is employed. The treatment of the free surface, so-called interface-tracking method, is proposed using the free surface evolution equation and the kinematic free surface boundary conditions at the free surface instead of the dynamic free surface boundary condition. AC method in this paper can be applied only to the hydrodynamic pressure using the decomposition into hydrostatic pressure and hydrodynamic pressure components. In this study, the boundary-fitted grids are used and advanced each time the free surface moved. The accuracy of our RANS solver is compared with the laboratory experimental and numerical data for a fully turbulent shallow-water trench flow. The algorithm yields practically identical velocity profiles that are in good overall agreement with the laboratory experimental measurement for the turbulent flow.

뭉뚝한 선수 선형 주위 자유수면 유동 수치 해석 (Numerical Analysis of Free Surface Flow around Blunt Bow Ship Model)

  • 박일룡;서성부;김진
    • 한국해양공학회지
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    • 제26권1호
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    • pp.9-16
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    • 2012
  • This paper presents the numerical results of a simulation of the free surface flow around a blunt bow ship model and focuses on the validation of the proposed method with a brief investigation of the relation between the resistance and free surface behavior. A finite volume method based on the Reynolds Averaged Navier-Stokes (RANS) approach is used to solve the governing flow equations, where the free surface, including wave breaking,is captured by using a two-phase Level-Set (LS) method. For turbulence closure, a two equation k-${\varepsilon}$ model with the standard wall function technique is used. Finally, the numerical results are compared with the available experimental data, showing good agreement.

CFD를 이용한 KRISO 추진효율 향상 장치(K-duct)의 성능 해석 (CFD Analysis of Performance of KRISO Devices (K-DUCT) for Propulsion Efficiency Improvement)

  • 서성부
    • 한국해양공학회지
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    • 제31권3호
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    • pp.183-188
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    • 2017
  • This paper provides numerical results for the estimation of the efficiency of KRISO energy saving devices in the design stage. A finite volume method is used to solve Reynolds averaged Navier-Stokes (RANS) equations, where the SST k-$\omega$ model is selected for turbulence closure. The propeller rotating motion is determined using a rigid body motion (RBM) scheme, which is called a sliding mesh technique. The numerical analysis focuses on predicting the power reduction by the designed KRISO devices (K-DUCT) under a self-propulsion condition. The present numerical results show good agreement with the available experimental data. Finally, it is concluded that CFD can be a useful method, along with model tests, for assessing the performance of energy saving devices for propulsion efficiency improvement.

자유수면 아래에서 회전하는 프로펠러 주위 유동 수치 해석 (Numerical Analysis of Flow around Propeller Rotating Beneath Free Surface)

  • 박일룡
    • 한국해양공학회지
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    • 제29권6호
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    • pp.427-435
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    • 2015
  • This paper provides the numerical results of a simulation of the flow around a propeller working beneath the free surface. A finite volume method is used to solve the unsteady Reynolds averaged Navier-Stokes (URANS) equations, where the wave-making problem is solved using a volume-of-fluid (VOF) method. The numerical analysis focuses on the propeller wake structure affected by the free surface, where we consider another free surface boundary condition that treats the free surface as a rigid wall surface. The propeller wake under the effect of these two free surface conditions shows a reduction in the magnitude of the longitudinal and vertical flow velocities, and its vortical structures strongly interact with the free surface. The thrust and torque coefficient under the free surface effect decrease about 3.7% and 3.1%, respectively. Finally, the present numerical results show a reasonable agreement with the available experimental data.

수치해를 이용한 선박의 점성저항 해석 (Visous resistance analysis of a ship using numerical solutions)

  • 곽영기
    • 한국해양공학회지
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    • 제11권2호
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    • pp.100-106
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    • 1997
  • Viscous flow around an actual ship is calculated by an use of RANS(Reynolds-averaged Navier-Stokes) solver. Reynolds stress is modelled by using k-$\varepsilon$ turbulence model and the law of wall is applied near the body. Body fitted coordinates are introduced for the treatment of the complex boundary of the ship hull form. The transformed equations in the computational domain are numerically solved by an employment of FVM(Finite Volume Method). SIMPLE(Semi-Implcit Pressure Linked Equation) method is adopted in the calculation of pressure and the solution of the disssssssscretized equation is obtained by the line-by-line method with the use of TDMA(Tri-Diagonal Matrix Algorithme). The subject ship model of actual calculation is 4,410 TEU class container carrier. For 4 geosim models the calculated viscous resistancce values are compared with the model test results and analyzed on their componentss. The resistance performance of an actual ship is predicted very resonably, so this mothod may be utilized as a design tool of hull form.

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HSVA 두 탱커 선형에 대한 점성유동 계산 (Numerical Calculation of Viscous Flows for Two HSVA Tankers)

  • 곽영기
    • 한국해양공학회지
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    • 제13권2호통권32호
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    • pp.138-146
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    • 1999
  • The viscous flow around a ship hull is calculated by the use of RANS(Reynolds-averaged Navier-Stokes) solver. Reynolds stresses are midelled by using the k-${epsilon}$ turbulence model and the law is applied near the body. Body fitted corrdinates are introduced for the treatment of the complex boundary of the ship hull form and the governing equations in the physical domain transformed into ones in the computational domain. The transformed equations are numerically solved by an employment of FVM(Finite Volume Method). SIMPLE(Semi-Implicit Pressure Linked Equation) method is adopted in the calculation of pressure and the solution of the sidcretized equation is obtained by the line-by-line method with the use of TDMA(Tri-Diagonal Matrix Algorithme). To assure the proprietty of this computing method, HSVA tanker and Dyne hull are calculated ar both model and ship scale Reynolds number. Their reaults of pressure distributions on fore and aft body, axial velocity contours and transverse velocity velocity vectors and viscous resistance coefficients are compared with other's experiments and calculations.

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RANS 방법을 이용한 파랑 중 선박운동 해석 (Numerical Prediction of Ship Motions in Wave using RANS Method)

  • 박일룡;김진;김유철;김광수;반석호;서성부
    • 대한조선학회논문집
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    • 제50권4호
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    • pp.232-239
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    • 2013
  • This paper provides the structure of a Reynolds Averaged Navier-Stokes(RANS) based simulation method and its validation results for the ship motion problem. The motion information of the hull computed from the equations of motion is considered in the momentum equations as the relative fluid motions with respect to a non-inertial coordinates system. A finite volume method is used to solve the governing equations, while the free surface is captured by using a two-phase level-set method and the realizable k-${\varepsilon}$ model is used for turbulence closure. For the validation of the present numerical approach, the numerical results of the resistance and motion tests for DTMB 5415 at two ship speeds are compared against available experimental data.

개수로 흐름의 3차원 전산해석을 위한 유효 벽면거칠기 산정 (Evaluation of Effective Wall Roughness for 3D Computational Analysis of Open Channel Flow)

  • 최준우;백운일;이상목;윤성범
    • 대한토목학회논문집
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    • 제28권6B호
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    • pp.627-634
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    • 2008
  • 개수로의 난류흐름을 VOF(Volume of Fluid)기법을 채용한 RANS(Reynolds averaged Navier-Stokes) 방정식 모형을 사용하여 수치모의할 때 벽면함수의 거칠기를 산정하기 위해 고려해야 하는 점들을 연구하였다. 거친 벽면상의 흐름을 위한 벽면함수의 거칠기 상수(roughness constant)는 관수로 흐름의 실험을 통하여 얻어진 값을 사용한다. 그러나 개수로 흐름에서는 이 거칠기 상수가 Froude 수에 따라 변화하므로 이를 고려할 수 있어야 하며, 개수로에서 광범위하게 사용되는 Manning 조도계수에 상응하는 벽면 거칠기 높이(roughness height)를 산정하여 사용할 수 있어야 있다. 본 연구에서는 모형에 입력되는 벽면함수의 거칠기 높이와 Manning 조도계수 사이의 관계를 분석하였다. 이를 바탕으로 수치모형의 특성이 고려되고 Manning 조도계수의 함수로 표현되는 유효 거칠기 높이 산정식을 제안하였다.

고진폭 만곡수로에서 난류흐름의 비정상 RANS 수치모의 (Unsteady RANS computations of turbulent flow in a high-amplitude meandering channel)

  • 이승규;백중철
    • 한국수자원학회논문집
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    • 제50권2호
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    • pp.89-97
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    • 2017
  • 만곡수로에서의 흐름 구조는 나선형 운동을 갖는 이차 재순환 흐름 그리고 만곡부 측벽으로부터 발생하는 흐름분리로 인한 전단층 등으로 복잡하다. 이 연구에서는 3개의 통계학적 난류모형($k-{\varepsilon}$, RNG $k-{\varepsilon}$, $k-{\omega}$ SST) 그리고 자유수면 변동 해석을 위한 VOF 기법을 적용한 비정상 Reynolds-averaged Navier-Stokes (RANS) 계산을 수행하여 고진폭 만곡수로인 키노시타(Kinoshita) 수로에서의 이차류와 편수위를 해석하였다. 2차 정확도의 유한체적법을 이용하여 구한 해석결과를 기존 수리실험 자료와 비교하여 각 난류모형의 적용성을 평가하였다. 비정상 RANS 계산에서 적용한 3개의 통계학적 난류모형의 해석 결과를 분석해 보면 키노시타 수로에서 발생하는 만곡부 편수위는 3개 모형 모두 유사하게 모의하는 한편, 전반적인 이차류 분포는 $k-{\omega}$ SST상대적으로 잘 모의하는 것으로 나타났다. 하류에 위치한 만곡부 흐름에 영향을 미쳐 국부적으로 발생한 이차류와 이전의 만곡부 중앙 수면 부근에서 발생하는 한 쌍의 이차 와류가 존재하는 현상을 관측하였으며, $k-{\omega}$ SST 난류모형은 이러한 복잡한 와류 변화를 양호하게 모의했다. $k-{\varepsilon}$ 모형을 기반으로 개발된 두 모형으로 모의한 결과에서는 실험에서 관측된 중앙 만곡부에 존재하는 두 개의 이차류 중, 시계방향 와류가 재현되지 않는다. VOF기법을 이용해서 계산한 만곡부에서의 편수위 해석결과는 적용한 모든 난류모형에 대해서 전반적으로 실험값을 양호하게 재현하는 것으로 나타났다.