• 제목/요약/키워드: Fluid-structural interaction

검색결과 352건 처리시간 0.026초

Numerical modelling for evaluating the TMD performance in an industrial chimney

  • Iban, A.L.;Brownjohn, J.M.W.;Belver, A.V.;Lopez-Reyes, P.M.;Koo, K.
    • Wind and Structures
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    • 제17권3호
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    • pp.263-274
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    • 2013
  • A numerical technique for fluid-structure interaction, which is based on the finite element method (FEM) and computational fluid dynamics (CFD), was developed for application to an industrial chimney equipped with a pendulum tuned mass damper (TMD). In order to solve the structural problem, a one-dimensional beam model (Navier-Bernoulli) was considered and, for the dynamical problem, the standard second-order Newmark method was used. Navier-Stokes equations for incompressible flow are solved in several horizontal planes to determine the pressure in the boundary of the corresponding cross-section of the chimney. Forces per unit length were obtained by integrating the pressure and are introduced in the structure using standard FEM interpolation techniques. For the fluid problem, a fractional step scheme based on a second order pressure splitting has been used. In each fluid plane, the displacements have been taken into account considering an Arbitrary Lagrangian Eulerian approach. The stabilization of convection and diffusion terms is achieved by means of quasi-static orthogonal subscales. For each period of time, the fluid problem was solved and the geometry of the mesh of each fluid plane is updated according to the structure displacements. Using this technique, along-wind and across-wind effects have been properly explained. The method was applied to an industrial chimney in three scenarios (with or without TMD and for different damping values) and for two wind speeds, showing different responses.

15,000 마력급 원심식 압축기 임펠러 블레이드의 유체-구조 연성해석을 이용한 형상최적설계 (Shape Optimization of Impeller Blades for 15,000 HP Centrifugal Compressor Using Fluid Structural Interaction Analysis)

  • 강현수;오정수;한정삼
    • 대한기계학회논문집B
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    • 제38권6호
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    • pp.547-556
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    • 2014
  • 본 논문에서는 15,000 마력급 원심식 압축기 임펠러 블레이드에 대한 단방향 유체-구조 연성해석 및 응답표면법을 이용한 형상최적설계를 제시하였다. 임펠러 블레이드의 형상은 공력 성능에 영향을 미칠 뿐만 아니라, 유체의 압력과 원심력에 의한 임펠러의 구조적 안전성에도 큰 영향을 미치므로 유체-구조 연성해석을 함께 고려한 형상최적설계가 필요한 분야이다. 본 논문에서 유체-구조 연성해석의 유체영역과 구조영역을 ANSYS CFX와 Mechanical을 사용하여 각각 해석하였다. 실험계획법을 기반으로 유체 및 구조해석 결과에 대한 응답표면을 생성하여 구조적 안전성 및 압축비를 제한조건으로 하고 임펠러의 효율을 최대화하는 임펠러 블레이드의 형상최적설계를 수행하였다.

조립식 클립형 비닐하우스의 강풍 및 폭설시 구조 안정성 평가 (An Evaluation of the Structural Stability of a Clip Type Prefabricated Greenhouse under Strong Wind and Heavy Snow Conditions)

  • 노경철
    • 한국산학기술학회논문지
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    • 제15권6호
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    • pp.3423-3428
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    • 2014
  • 본 연구는 폭설 및 강풍 시 조립식 비닐하우스의 구조안정성을 해석하였으며, 내재해 규격 중 가장 엄격한 기준인 적설량 40 cm, 풍속 40m/s를 재해 기준으로 고려하여 적설 하중 및 풍 하중이 비닐하우스 구조에 미치는 영향을 분석하였다. 풍 하중의 경우, 공기역학적 특성에 의해 비닐하우스의 형상에 따른 국부적인 압력 분포 특성이 상이하기 때문에 유체-고체연성 해석 기법을 적용하였다. 적설하중 및 풍하중 해석 결과에서 비닐하우스 하단지지 파이프와 지붕서까래 체결 부분 근처에서 가장 큰 응력 및 변형이 발생하며, 적설 하중에 비해 풍 하중 시 구조 안정성이 다소 취약함을 확인하였다. 따라서 본 연구 결과를 기반으로 지지 파이프의 변형을 최소화 하면서 설치 및 유지보수가 용이한 조립식 연결 클립 설계를 위한 기초자료로 활용할 예정이다.

배플개수 및 내경변화에 따른 액체 저장탱크의 동억제 효과 (Dynamic Suppression Effects of Liquid Container to the Baffle Number and Hole Diameter)

  • 조진래;김민정;이상영;허진욱
    • 한국전산구조공학회논문집
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    • 제15권1호
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    • pp.147-154
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    • 2002
  • 수직방향 가속도를 받는 원통형 액체 저장탱크는 내부유체의 슬로싱(sloshing)에 의한 동하중에 의하여 구조 및 제어성능 안정성에 심각한 영향을 받을 수 있다. 더욱이 유체의 슬로싱 진동수가 제어계 혹은 탱크구조물의 고유진동수 근처에 있게되면 발사체에 큰 동하중과 모멘트를 유발하게 된다. 이와 같은 유체의 동적 효과를 억제하기 위하여 일반적으로 링형 탄성체 배플(baffle)을 채용하고 있다. 본 논문에서는 배플의 개수와 내경을 변수로 설정하여 배플의 동적억제효과를 평가 및 분석하기 위한 수치해석을 수행한다. 배플내경에 따른 파라메트릭 해석과, 탱크높이 및 유체높이를 각각 균등 분할하여 설치된 배들에 대한 동억제 효과를 분석한다. 유체와 구조물 사이의 정확하고 효과적인 연계해석을 위하여 ALE(arbitrary Lagrangin-Eulerian) 수치해석 기법을 적용한다.

판으로 나뉘어진 2차원 충류 채널유동에서 동적 유체-구조물 상호작용 수치해석 (Computation of Dynamic Fluid-Structure Interaction in a 2-Dimensional Laminar Channel Flow Divided by a Plate)

  • 남궁각;최형권;유정열
    • 대한기계학회논문집B
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    • 제26권12호
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    • pp.1738-1746
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    • 2002
  • In the FSI (Fluid-Structure Interaction) problems, two different governing equations are to be solved together. One is fur the fluid and the other for the structure. Furthermore, a kinematic constraint should be imposed along the boundary between the fluid and the structure. We use the combined formulation, which incorporates both the fluid and structure equations of motion into a single coupled variational equation so that it is not necessary to calculate the fluid force on the surface of structure explicitly when solving the equations of motion of the structure. A two-dimensional channel flow divided by a Bernoulli-Euler beam is considered and the dynamic response of the beam under the influence of channel flow is studied. The Navier-Stokes equations are solved using a P2P1 Galerkin finite element method with ALE (Arbitrary Lagrangian-Eulerian) algorithm. The internal structural damping effect is not considered in this study and numerical results are compared with a previous work fer steady case. In addition to the Reynolds number, two non-dimensional parameters, which govern this fluid-structure system, are proposed. It is found that the larger the dynamic viscosity and density of the fluid are, the larger the damping of the beam is. Also, the added mass is found to be linearly proportional to the density of the fluid.

Dynamic behavior of a functionally graded plate resting on Winkler elastic foundation and in contact with fluid

  • Shafiee, Ali A.;Daneshmand, Farhang;Askari, Ehsan;Mahzoon, Mojtaba
    • Structural Engineering and Mechanics
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    • 제50권1호
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    • pp.53-71
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    • 2014
  • A semi-analytical method is developed to consider free vibrations of a functionally graded elastic plate resting on Winkler elastic foundation and in contact with a quiescent fluid. Material properties are assumed to be graded distribution along the thickness direction according to a power-law in terms of the volume fractions of the constituents. The fluid is considered to be incompressible and inviscid. In the analysis, the effect of an in-plane force in the plate due to the weight of the fluid is taken into account. By satisfying the compatibility conditions along the interface of fluid and plate, the fluid-structure interaction is taken into account and natural frequencies and mode shapes of the coupled system are acquired by employing energy methods. The results obtained from the present approach are verified by those from a finite element analysis. Besides, the effects of volume fractions of functionally graded materials, Winkler foundation stiffness and in-plane forces on the dynamic of plate are elucidated.

Free vibration of conical shell frusta of variable thickness with fluid interaction

  • M.D. Nurul Izyan;K.K. Viswanathan;D.S. Sankar;A.K. Nor Hafizah
    • Structural Engineering and Mechanics
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    • 제90권6호
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    • pp.601-610
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    • 2024
  • Free vibration of layered conical shell frusta of thickness filled with fluid is investigated. The shell is made up of isotropic or specially orthotropic materials. Three types of thickness variations are considered, namely linear, exponential and sinusoidal along the radial direction of the conical shell structure. The equations of motion of the conical shell frusta are formulated using Love's first approximation theory along with the fluid interaction. Velocity potential and Bernoulli's equations have been applied for the expression of the pressure of the fluid. The fluid is assumed to be incompressible, inviscid and quiescent. The governing equations are modified by applying the separable form to the displacement functions and then it is obtained a system of coupled differential equations in terms of displacement functions. The displacement functions are approximated by cubic and quintics splines along with the boundary conditions to get generalized eigenvalue problem. The generalized eigenvalue problem is solved numerically for frequency parameters and then associated eigenvectors are calculated which are spline coefficients. The vibration of the shells with the effect of fluid is analyzed for finding the frequency parameters against the cone angle, length ratio, relative layer thickness, number of layers, stacking sequence, boundary conditions, linear, exponential and sinusoidal thickness variations and then results are presented in terms of tables and graphs.

Dynamic characteristics assessment of reactor vessel internals with fluid-structure interaction

  • Je, Sang Yun;Chang, Yoon-Suk;Kang, Sung-Sik
    • Nuclear Engineering and Technology
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    • 제49권7호
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    • pp.1513-1523
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    • 2017
  • Improvement of numerical analysis methods has been required to solve complicated phenomena that occur in nuclear facilities. Particularly, fluid-structure interaction (FSI) behavior should be resolved for accurate design and evaluation of complex reactor vessel internals (RVIs) submerged in coolant. In this study, the FSI effect on dynamic characteristics of RVIs in a typical 1,000 MWe nuclear power plant was investigated. Modal analyses of an integrated assembly were conducted by employing the fluid-structure (F-S) model as well as the traditional added-mass model. Subsequently, structural analyses were carried out using design response spectra combined with modal analysis data. Analysis results from the F-S model led to reductions of both frequency and Tresca stress compared to those values obtained using the added-mass model. Validation of the analysis method with the FSI model was also performed, from which the interface between the upper guide structure plate and the core shroud assembly lug was defined as the critical location of the typical RVIs, while all the relevant stress intensities satisfied the acceptance criteria.

200 W급 자이로밀형 수직축 풍력터빈 로터 블레이드 유체-구조 연성 해석 (Fluid-structure interaction analysis on a low speed 200 W-class gyromill type vertical axis wind turbine rotor blade)

  • 조우석;최영도;김현수
    • Journal of Advanced Marine Engineering and Technology
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    • 제37권4호
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    • pp.344-350
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    • 2013
  • 본 연구는 200 W급 자이로밀형 수직축 풍력터빈 로터 블레이드 형상에 대한 구조 안정성을 평가하기 위하여 단방향 유체-구조 연성 해석 기법(FSI: Fluid-Structure Interaction)을 적용한 구조해석을 수행하였다. 설계된 수치해석 모델에 대한 3차원 모델링 형상 데이터를 이용하여 격자를 생성하고, 풍력터빈 유동장에 대한 유동해석을 수행하여 구해진 압력데이터를 구조해석 모델에 맵핑한 후 단방향 유체-구조 연성 해석을 수행하였다. 단방향 유체-구조 연성 해석에서 평가되는 최대응력과 각 물성데이터의 항복강도기준으로 안정성을 평가하였다. 유동해석은 정격풍속 10 m/s와 극한 풍속 60 m/s에 대하여 수행하였다. 구조해석 결과로 최대변형량은 블레이드 상부 끝단 측면에서 나타나며, 최대등가응력은 블레이드 외면과 내부 보강재 부분, 스트럿 부분에서 나타나지만, 재료의 항복강도와 최대등가응력 비교시 안전율이 2.21이므로 구조적으로 안전함을 확인하였다.