• 제목/요약/키워드: Incompressible free surface flow

검색결과 77건 처리시간 0.021초

자유표면을 가지는 점성 유동장내의 기포거동에 관한 기초해석 (Basic Analysis of Bubble Behavior in the Viscous Flow Domain with the Free Interface)

  • 박일룡;전호환
    • 대한조선학회논문집
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    • 제39권1호
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    • pp.16-27
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    • 2002
  • 이유체 비압축성 점성 유동장내에서의 이차원 기포의 운동과 변형을 레벨셋 방법을 도입하여 해석하였다. 지배방정식은 유한체적법을 사용하여 해석하였다. 본 방법의 수치계산결과는 발표된 실험결과와 계산결과의 비교를 통해 검증하였다. 수치계산에서는 초기상태에 유동장 내에 두 유체의 비교란 자유표면이 존재할 때 단일 및 다수의 기포의 운동과 변형을 해석하였다. 해석을 통해 표면장력의 변화와 밀도비의 변화에 따른 기포거동의 변화를 살펴볼 수 있었다. 자유표면은 기포가 자유표면으로 상승할 때 기포의 거동에 큰 영향을 끼친다. 레벨셋법을 사용하여 계산된 본 연구의 결과들을 통해서 기포거동의 특성을 살펴볼 수 있었다.

Endplate effect on aerodynamic characteristics of three-dimensional wings in close free surface proximity

  • Jung, Jae Hwan;Kim, Mi Jeong;Yoon, Hyun Sik;Hung, Pham Anh;Chun, Ho Hwan;Park, Dong Woo
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제4권4호
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    • pp.477-487
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    • 2012
  • We investigated the aerodynamic characteristics of a three-dimensional (3D) wing with an endplate in the vicinity of the free surface by solving incompressible Navier-Stokes equations with the turbulence closure model. The endplate causes a blockage effect on the flow, and an additional viscous effect especially near the endplate. These combined effects of the endplate significantly reduce the magnitudes of the velocities under the lower surface of the wing, thereby enhancing aerodynamic performance in terms of the force coefficients. The maximum lift-to-drag ratio of a wing with an endplate is increased 46% compared to that of wing without an endplate at the lowest clearance. The tip vortex of a wing-with-endplate (WWE) moved laterally to a greater extent than that of a wing-without-endplate (WOE). This causes a decrease in the induced drag, resulting in a reduction in the total drag.

Numerical Simulations of Breaking Waves above a Two-Dimensional Submerged Circular Cylinder

  • Kim, Seung-Nam;Lee, Young-Gill
    • Journal of Ship and Ocean Technology
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    • 제5권2호
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    • pp.50-61
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    • 2001
  • In this paper, nonlinear interactions between water waves and a horizontally submerged circular cylinder are numerically simulated. In this case, the nonlinear interactions between them generated a wave breaking phenomenon. The wave breaking phenomenon plays an important role in the wave farce. Negative drifting forces are raised at shallow submerged cylinders under waves because of the wave breaking phenomenon. For the numerical simulation, a finite difference method based on the unsteady incompressible Navier-Stokes equations and the continuity equation is adopted in the rectangular grid system. The free surface is simulated with a computational simulation method of two-layer flow by using marker density. The results are compared with some existing computational and experimental results.

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유한요소법을 이용한 level set 공식화의 해석 (FINITE ELEMENT ANALYSIS OF LEVEL SET FORMULATION)

  • 최형권
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2009년 추계학술대회논문집
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    • pp.223-227
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    • 2009
  • In the present study, a least square weighted residual method and Taylor-Galerkin method were formulated and tested for the discretization of the two hyperbolic type equations of level set method; advection and reinitialization equations. The two approaches were compared by solving a time reversed vortex flow and three-dimensional broken dam flow by employing a four-step splitting finite element method for the solution of the incompressible Navier-Stokes equations. From the numerical experiments, it was shown that the least square method is more accurate and conservative than Taylor-Galerkin method and both methods are approximately first order accurate when both advection and reinitialization phase are involved in the evolution of free surface.

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Numerical prediction for the performance of a floating-type breakwater by using a two-dimensional particle method

  • Lee, Byung-Hyuk;Hwang, Sung-Chul;Nam, Jung-Woo;Park, Jong-Chun
    • International Journal of Ocean System Engineering
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    • 제1권1호
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    • pp.37-45
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    • 2011
  • The nonlinear free-surface motions interacting with a floating body were investigated using the Moving Particle Semi-implicit (MPS) method proposed by Koshizuka and Oka [6] for incompressible flow. In the numerical method, more realistic Lagrangian moving particles were used for solving the flow field instead of the Eulerian approach with a grid system. Therefore, the convection terms and time derivatives in the Navier-Stokes equation can be calculated more directly, without any numerical diffusion, instabilities, or topological failure. The MPS method was applied to a numerical simulation of predicting the efficiency of floating-type breakwater interacting with waves.

통합보존식 해석과 HCIB 법을 이용한 슬로싱 탱크 내부 갇힌 공기에 의한 압력 진동 모사 (Simulation of a Pulsating Air Pocket in a Sloshing Tank Using Unified Conservation Laws and HCIB Method)

  • 신상묵
    • 대한조선학회논문집
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    • 제58권5호
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    • pp.271-280
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    • 2021
  • The code developed using a pressure-based method for unified conservation laws of incompressible/compressible fluids is expanded to handle moving or deforming body boundaries using the hybrid Cartesian/immersed boundary method. An instantaneous pressure field is calculated from a pressure Poisson equation for the whole fluid domain, including the compressible gas region. The polytropic gas is assumed for the compressible fluid so that the energy equation is decoupled. Immersed boundary nodes are identified based on edges crossing body boundaries. The velocity vector is reconstructed at the immersed boundary node using an interpolation along the assigned local normal line. The developed code is validated by comparing the time histories of pressure and wave elevation for sloshing in a rectangular and a membrane-type tank. The validated code is applied to simulate air cushion effects in a rectangular tank under sway motion. Time variations of pressure fields are analyzed in detail as the air pocket pulsates. It is shown that the contraction and expansion of the air pocket dominate the pressure loads on the wall of the tank. The present results are in good agreement with other experimental and computational results for the amplitude and the decay of the pressure oscillations measured at the pressure gauges.

유한요소법을 이용한 2차원 사각탱크내 비선형 슬로싱 동응답 해석 (Dynamic Response Analysis of Nonlinear Sloshing in Two Dimensional Rectangular Tank using Finite Element Method)

  • 조진래;이홍우;하세윤;박태학;이우용
    • 한국전산구조공학회논문집
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    • 제16권1호
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    • pp.33-42
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    • 2003
  • 본 논문에서는 2차원 사각탱크내 비압축성, 비점성, 비회전 유동에 대한 비선형 슬로실 해석을 다룬다. 유체영역의 지배방정식으로 포텐셜 이론에 기반을 둔 라플라스 방정식을 사용한다. 대변형의 슬로싱 거동을 표현하기 위하여 베르누이 방정식으로부터 유도된 운동 및 동역학적 자유표면 경계조건을 적용한다. 이러한 비선형 슬로싱 문제는 9결점 요소를 사용한 유한요소법에 의하여 해석되어 진다. 경계조건에 대한 시간적분과 정확한 속도계산을 위하여 각각 예측자-수정자 기법 및 최소자승법을 도입하였다. 또한, 자유표면 추적에서 야기되는 안정성 문제는 시간변동에 대한 자유표면 위치를 직접 계산함으로써 확보할 수 있었다. 외부 조화가진에 대한 본 논문의 결과는 선형이론해 또는 참고문헌의 결과와 비교하여 매우 정확하고 안정적이었다. 프로그램 검증 후, 유체높이와 가진크기에 대한 슬로싱 응답특성을 분석하였다.

챔퍼가 3차원 사각 탱크 내부의 액체 슬로싱에 미치는 영향 (Effect of Chamfering Top Corners on Liquid Sloshing in the Three-dimensional Rectangular Tank)

  • 정재환;이창열;윤현식
    • 대한조선학회논문집
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    • 제47권4호
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    • pp.508-516
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    • 2010
  • This study aims at investigating the effect of the chamfer on the liquid sloshing in the three-dimensional (3D) rectangular tank. In order to simulate the 3D incompressible viscous two-phase flow in the 3D tank with partially filled liquid, the present study has adopted the volume of fluid (VOF) method based on the finitevolume method which has been well verified by comparing with the results of the relevant previous researches. The effects of the chamfering top corners of the tank on the liquid sloshing characteristics have been investigated. The angle of the chamfering top corners (${\theta}$) has been changed in the range of $0^{\circ}{\leq}{\theta}{\leq}60^{\circ}$(${\Delta}{\theta}=15^{\circ}$) to observe the free surface behavior, and the effect on wall impact load. Generally, as the angle of the chamfering top corners increases, the impact pressure on the upper knuckle point decreases. However it seemed that a critical angle of the chamfering top corners exists to reveal the lowest impact pressure on the wall.

받음각을 갖는 평판의 유체 충격 시뮬레이션 (Numerical Simulation for Fluid Impact Loads by Flat Plate with Incident Angles)

  • 이병혁;정성준;류민철;김용수;박종천
    • 대한조선학회논문집
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    • 제45권1호
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    • pp.1-9
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    • 2008
  • The free-surface motions interacting with structures are investigated numerically using the Moving Particle Semi-implicit (MPS) method proposed by Koshizuka et al. (1996) for solving incompressible flow. In the method, Lagrangian moving particles are used instead of Eulerian approach using grid system. Therefore the terms of time derivatives in Navier-Stokes equation can be directly calculated without any numerical diffusion or instabilities due to the fully Lagrangian treatment of fluid particles and topological failure never occur. The MPS method is applied to the numerical study on the fluid impact loads for wet-drop tests in a LNG tank, and the results are compared with experimental ones.

Nonlinear Wave Forces on an Offshore Wind Turbine Foundation in Shallow Waters

  • Choi, Sung-Jin;Lee, Kwang-Ho;Hong, Keyyoung;Shin, Seong-Ho;Gudmestad, O.T.
    • International Journal of Ocean System Engineering
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    • 제3권2호
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    • pp.68-76
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    • 2013
  • In this study, a 3D numerical model was used to predict nonlinear wave forces on a cylindrical pile installed in a shallow water region. The model was based on solving the viscous and incompressible Navier-Stokes equations for a two-phase flow (water and air) model and the volume of fluid method for treating the free surface of water. A new application was developed based on the cut-cell method to allow easy installation of complicated obstacles (e.g., bottom geometry and cylindrical pile) in a computational domain. Free-surface elevation, water particle velocities, and inline wave forces were calculated, and the results show good agreement with experimental data obtained by the Danish Hydraulic Institute. The simulation results revealed that the proposed model can, without the use of empirical formulas (i.e., Morison equation) and additional wave analysis models, reliably predict non-linear wave forces on an offshore wind turbine foundation installed in a shallow water region.