• 제목/요약/키워드: Sloshing motion

검색결과 142건 처리시간 0.023초

장방형탱크 내부 슬로싱 현상에 관한 PIV적용에 관한 연구 (A Study on Application of PIV to Sloshing Phenomenon inside Rectangular Tank)

  • 김광선;최주열;조대환
    • 해양환경안전학회:학술대회논문집
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    • 해양환경안전학회 2009년도 춘계학술발표회
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    • pp.85-86
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    • 2009
  • 슬로싱 현상은 탱크안의 자유표면을 갖는 유체의 비선형거동으로 탱크안의 구조물에 동적 하중을 발생시키므로 일반적으로 해양 구조물의 설계에 중요한 문제이다. 이 연구에서는 피칭운동을 하는 사각탱크 내에서 자유표면을 갖는 유체의 슬로싱에 대해 실험적으로 연구하였다.

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A new ALE formulation for sloshing analysis

  • Aquelet, N.;Souli, M.;Gabrys, J.;Olovson, L.
    • Structural Engineering and Mechanics
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    • 제16권4호
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    • pp.423-440
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    • 2003
  • Arbitrary Lagrangian Eulerian finite element methods gain interest for the capability to control mesh geometry independently from material geometry, the ALE methods are used to create a new undistorted mesh for the fluid domain. In this paper we use the ALE technique to solve fuel slosh problem. Fuel slosh is an important design consideration not only for the fuel tank, but also for the structure supporting the fuel tank. "Fuel slosh" can be generated by many ways: abrupt changes in acceleration (braking), as well as abrupt changes in direction (highway exit-ramp). Repetitive motion can also be involved if a "sloshing resonance" is generated. These sloshing events can in turn affect the overall performance of the parent structure. A finite element analysis method has been developed to analyze this complex event. A new ALE formulation for the fluid mesh has been developed to keep the fluid mesh integrity during the motion of the tank. This paper explains the analysis capabilities on a technical level. Following the explanation, the analysis capabilities are validated against theoretical using potential flow for calculating fuel slosh frequency.

비선형 경계조건을 고려한 내부 유체의 3차원 자유수면 유동해석 (3-D analysis of sloshing motion in a fluid container with nonlinear boundary conditions)

  • 김문겸;임윤묵;조경환;박종헌;이성민
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2002년도 춘계 학술발표회 논문집
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    • pp.177-184
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    • 2002
  • Large amplitude sloshing can occur in contained fluid region due to the seismic ground motion. Also, The pressure by large amplitude sloshing damages the connections between the wall and roof of a fluid container and causes outflow of contained fluid. Therefore, to predict the dynamic behavior accurately, three dimensional analysis with the nonlinear boundary condition must be performed. In this study, the numerical solution procedure is developed using the boundary element method with the Lagrangian particle approach. In order to demonstrate the accuracy and validity of the developed method, the fluid motion for a free oscillation with small amplitude and a forced vibration are analyzed. And the numerical results are compared with the linear theory results and the previous studies with the nonlinear boundary condition.

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날개형 및 격막형 배플을 이용한 유체저장탱크 내부의 슬로싱 저감 연구 (A Study on the Reduction of the Sloshing of Storage Tank Using Wing and Diaphragm Baffle)

  • 이영신;김현수;이재형;김영완;고성호
    • 대한기계학회논문집A
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    • 제27권12호
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    • pp.2039-2046
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    • 2003
  • Storage tank filled with fluid has unique dynamic characteristics compared to general structures, due to the interaction between fluid and structure. The oscillation of the fluid surface caused by external forces is called sloshing, which occurs in moving vehicles with contained liquid masses, such as trucks, railroad cars, aircrafts, and liquid missles. In this study, the evaluation method for the reduction of sloshing, the optimized size and location of wing and diaphragm baffles are suggested based on the experimental results. The experimental device can simulate the translation motion. A rectangular tank and various baffles are fabricated to study on the sloshing characteristics. The forces measured using the load cell at tank wall and those are compared with each other through the Fourier transformation for various conditions. The study of the sloshing of the rectangular tank equipped with baffles is conducted under the same conditions with non-baffled rectangular tank experiment. From the experimental results, the sloshing reduction effect by the baffles is observed. In conclusion in case of diaphragm baffles, the optimized size ratio of the width of baffle to the water height is 0.44 and the installation location has no effect to the damping of sloshing. In case of wing baffles, the optimized size ratio of the width of baffle to the length of a rectangular tank is 0.1 and the optimized location ratio of the baffle to the water height is 0.9.

탱크 내 격벽에 의한 간극 변화가 선박 운동에 미치는 영향 연구 (A Study of Sloshing Tank on Vessel Motions with Various Baffle Clearance)

  • 김경성;유선진
    • 해양환경안전학회지
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    • 제24권6호
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    • pp.796-802
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    • 2018
  • 선박의 유체 저장 탱크 내부의 적재용량에 의한 선박 운동 고유 특성의 변화는 많은 실험 과 연구를 통해 밝혀졌다. 또한 이러한 현상에 의한 선박 운동 특성 변화를 최소화하기 위한 장치는 지속적으로 연구 및 개발되고 있으며, 특히 횡동요 운동에 대한 저감효과에 대한 부분이 주를 이루고 있다. 본 연구에서는 이러한 장치 중 하나인 저장탱크 내부의 격벽에 의한 횡동요 저감장치의 길이 변화에 따른 간극의 변화에 의한 선박 운동의 변화를 수치 시뮬레이션 하였다. 본 연구를 위해 경계요소법 기반의 부유체 운동 프로그램과 입자법 기반의 전산유체역학 프로그램이 동적 연성된 프로그램을 사용하였으며, 동적 연성된 프로그램은 동일 실험과의 비교를 통해 검증하였다. 검증된 프로그램은 격벽의 길이를 달리하여 간극에 변화를 준 다양한 경우에 대해 수치 시뮬레이션을 수행하였다. 그 결과 액체 저장률의 변화 및 액체 탱크 내부의 격벽에 의한 간극의 차이에 의해 선박 운동 특성이 변화함을 응답 진폭 함수의 비교를 통해 확인하였다. 주목할 만한 결과로써 적재용량에 따라 변화하는 선박의 운동 특성이 간극을 조정함으로써 동일한 선박 특성을 가지게 됨을 확인하였으며, 이는 격벽에 의한 간극의 조종을 통한 선박 운동 제어가 가능함을 보여준다. 추후 격벽의 수 및 각기 다른 길이를 가진 격벽에 의한 연구를 수행하여 격벽 길이 조정을 통한 선박 운동 특성 제어에 대한 연구를 수행할 계획이다.

직사각형 단면을 갖는 유체 저장 구조물의 거동에 관한 연구 (A Study on Behavior of Rectangular Liquid Storage Structures)

  • 박장호
    • 한국안전학회지
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    • 제18권1호
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    • pp.101-107
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    • 2003
  • Dynamic behavior of flexible rectangular liquid storage structures is analysed by the developed method. The rectangular liquid storage structures are assumed to be fixed to the ground and a moving coordinate system is used. The irrotational motion of invicid and incompressible ideal fluid is represented by two analytic solutions. One is the solution of the fluid motion in the rigid rectangular liquid storage structure due to ground motions and the other is the solution of the fluid motion by the motion of the wall in the flexible rectangular liquid storage structure. The motion of structure is modeled by finite elements. The fluid-structure interaction effect is reflected into the coupled equation of motion as added fluid mass matrix. The free surface sloshing motion and hydrodynamic pressure acting on the wall in the flexible rectangular liquid storage structure due to the horizontal ground motion are obtained by the developed method and verified.

벽면의 유연성을 고려한 액체저장탱크의 동적해석 (Seismic Analysis of Liquid Storage Tanks Considering Shell Flexibility)

  • 이창근;윤정방
    • 대한토목학회논문집
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    • 제7권4호
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    • pp.21-29
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    • 1987
  • 직립원통형 액체저장탱크가 지진하중을 받을 때, 벽면 유연성이 벽면에 작용하는 유동압력에 미치는 영향에 대해 연구하였다. 탱크 구조물은 환(ring)형 유한요소를 사용하여 이상화하였으며, 유동에 대한 해는 Laplace 방정식을 이용하여 구하였다. 쉘-유체계의 운동방정식은 자유표면거동과 벽면유연성의 상관효과까지 포함하여 구성하였으며, 이에 따른 쉘 거동과 자유표면거동에 대한 자유진동모우드를 해석하는 방법이 개발되었다. 예제해석으로는, 구조적 특성이 다른 몇개의 저장탱크에 대해, 응답스펙트럼 해석법과 시간영역 해석법을 사용하여 동적응답을 구하였고, 그 결과들을 비교 분석하였다.

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The pressure distribution on the rectangular and trapezoidal storage tanks' perimeters due to liquid sloshing phenomenon

  • Saghi, Hassan
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제8권2호
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    • pp.153-168
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    • 2016
  • Sloshing phenomenon is a complicated free surface flow problem that increases the dynamic pressure on the sidewalls and the bottom of the storage tanks. When the storage tanks are partially filled, it is essential to be able to evaluate the fluid dynamic loads on the tank's perimeter. In this paper, a numerical code was developed to determine the pressure distribution on the rectangular and trapezoidal storage tanks' perimeters due to liquid sloshing phenomenon. Assuming the fluid to be inviscid, the Laplace equation and the nonlinear free surface boundary conditions were solved using coupled boundary element - finite element method. The code performance for sloshing modeling was validated using Nakayama and Washizu's results. Finally, this code was used for partially filled rectangular and trapezoidal storage tanks and free surface displacement, pressure distribution and horizontal and vertical forces exerted on the tanks' perimeters due to liquid sloshing phenomenon were estimated and discussed.

CFD simulation of compressible two-phase sloshing flow in a LNG tank

  • Chen, Hamn-Ching
    • Ocean Systems Engineering
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    • 제1권1호
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    • pp.31-57
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    • 2011
  • Impact pressure due to sloshing is of great concern for the ship owners, designers and builders of the LNG carriers regarding the safety of LNG containment system and hull structure. Sloshing of LNG in partially filled tank has been an active area of research with numerous experimental and numerical investigations over the past decade. In order to accurately predict the sloshing impact load, a new numerical method was developed for accurate resolution of violent sloshing flow inside a three-dimensional LNG tank including wave breaking, jet formation, gas entrapping and liquid-gas interaction. The sloshing flow inside a membrane-type LNG tank is simulated numerically using the Finite-Analytic Navier-Stokes (FANS) method. The governing equations for two-phase air and water flows are formulated in curvilinear coordinate system and discretized using the finite-analytic method on a non-staggered grid. Simulations were performed for LNG tank in transverse and longitudinal motions including horizontal, vertical, and rotational motions. The predicted impact pressures were compared with the corresponding experimental data. The validation results clearly illustrate the capability of the present two-phase FANS method for accurate prediction of impact pressure in sloshing LNG tank including violent free surface motion, three-dimensional instability and air trapping effects.

Redistance 방정식의 경계조건이 슬로싱 문제의 level set 해석에 미치는 영향 (EFFECT OF THE BOUNDARY CONDITION OF REDISTANCE EQUATION ON THE LEVEL SET SOLUTION OF SLOSHING PROBLEM)

  • 최형권
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2009년 춘계학술대회논문집
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    • pp.165-169
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    • 2009
  • The effect of the Dirichlet boundary condition for the redistance equation of level set method on the solutionof sloshing problem is investigated by adopting four Dirichlet boundary conditions. For the solution of the incompressible Navier-Stokes equations, P1P1 four-step fractional finite element method is employed and a least-square finite element method is used for the solutions of the two hyperbolic type equations of level set method; advection and redistance equation. ALE (Arbitrary Lagrangian Eulerian) method is used to deal with a moving computational domain. It has been shown that the free surface motion in a sloshing tank is strongly dependent on the type of the Dirichlet boundary condition and the results of broken dam and sloshing problems using various Dirichlet boundary conditions are discussed and compared with the existing experimental results.

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