• 제목/요약/키워드: arbitrary Lagrangian-Eulerian

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ALE 기반 외부 보조연료탱크 충돌충격시험 수치해석 연구 (Study on the Numerical Analysis of Crash Impact Test for External Auxiliary Fuel Tank based on ALE)

  • 김현기;김성찬
    • 한국산학기술학회논문지
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    • 제19권3호
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    • pp.8-13
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    • 2018
  • 외부 충격에 대한 연료탱크의 구조 건전성을 확인하기 위해서는 연료탱크 내부 연료의 거동과 그에 따른 영향성을 파악할 수 있는 유체-구조 연성해석을 수행해야 한다. 과거에는 유체-구조 연성해석을 수행하기 위해서는 상당한 전산자원과 과도한 계산시간이 필요하여 수치해석 결과를 도출하기까지 많은 제약이 있었다. 하지만, 최근 컴퓨터 성능이 획기적으로 향상되어 유체-구조 연성해석 등의 복잡한 수치해석이 가능하게 되었다. 유체-구조 연성해석을 위해 주로 사용되는 방법은 ALE(Arbitrary Lagrangian and Eulerian)와 입자법(Smoothed Particle Hydrodynamic)이 있다. 두 방법에는 상호 장단점이 있기 때문에 수치해석의 목적에 따라 적합한 방법을 적용하는 것이 필요하다. 본 연구에서는 ALE을 적용하여 연료탱크 충돌충격 시험 수치모사를 수행하였다. 수치해석 목적은 충돌충격하중에 의해 컨테이너 내부에 장착된 연료탱크의 파손 가능성을 확인하는 것인데, 수치해석의 결과로 연료탱크 내부의 유체 거동을 파악하고, 충격하중에 의해 연료탱크와 컨테이너 구조물에서 발생하는 응력을 계산하여 연료탱크 파손 여부에 따른 내부 유체의 누설 가능성을 제고하였다.

점진성형의 공정평가를 위한 유한요소해석에서 묘사기법 적용에 관한 비교 연구 (Comparative Study on Description Schemes to Perform Finite Element Analysis in Incremental Forming Process)

  • 박준수;변상민
    • 대한기계학회논문집A
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    • 제36권9호
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    • pp.1073-1080
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    • 2012
  • 점진성형은 공구 운동으로 소재의 국부 소성변형 영역을 전체 소재에 확장시켜 목표 형상으로 변형시키는 냉간 성형공정이다. 본 논문에서는 점진성형의 유한요소해석 시 묘사기법에 관한 연구를 수행하였다. 고찰할 묘사기법으로 라그랑지언 묘사법과 ALE 묘사법을 선택하였다. 미끄럼 경계기법도 공구와 접촉표면에서 요소의 찌그러짐을 극복하기 위한 방법중의 한가지 경우로 고찰하였다. 묘사기법과 경계기법의 다양한 조합 중에 ALE 묘사법과 연계한 미끄럼 경계기법의 경우가 요소의 찌그러짐을 가장 완화 시켰다. 이 방법이 최종 단계 변형까지 점진성형 해석을 지속할 수 있도록 해주는 유일한 조합인 것으로 나타났다. 이에 반해, 라그랑지언 묘사법 및 순수 ALE 묘사법은 점진성형 해석 중에 요소의 찌그러짐이 극심하여 최종 변형 형상에 도달하기 오래 전에 해석이 중단되는 상태를 보였다.

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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고체-유체 연성력 제어를 위한 진화적 최적설계 (Evolutionary Optimization Design Technique for Control of Solid-Fluid Coupled Force)

  • 김현수;이영신
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.503-506
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    • 2005
  • In this study, optimization design technique for control of solid-fluid coupled force (sloshing) using evolutionary method is suggested. Artificial neural networks(ANN) and genetic algorithm(GA) is employed as evolutionary optimization method. The ANN is used to analysis of the sloshing and the genetic algorithm is adopted as an optimization algorithm. In the creation of ANN learning data, the design of experiments is adopted to higher performance of the ANN learning using minimum learning data and ALE(Arbitrary Lagrangian Eulerian) numerical method is used to obtain the sloshing analysis results. The proposed optimization technique is applied to the minimization of sloshing of the water in the tank lorry with baffles under 2 second lane change.

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분할된 ALE 방법에 의한 평금형 열간압출의 3차원 유한요소해석 (Three-dimensional finite element analysis of hot square die extrusion by using split ALE method)

  • 강연식;양동열
    • 대한기계학회논문집A
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    • 제21권11호
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    • pp.1912-1920
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    • 1997
  • In the analysis of metal forming process, ALE(Arbitrary Lagrangian Eulerian) finite element methods have been increasingly used for the capability to control mesh independently from material flow. The methods can be divided into two groups i.e., coupled and split formulations. In the present work, the split ALE formulation is used for computational efficiency. A split ALE finite element method developed for rigid-viscoplastic materials and applied to the analysis of hot square die extrusion. Since thermal state greatly affects the product quality, an ALE scheme for temperature analysis is also presented. As computational examples, profile shapes as square and cross-like sections are chosen.

Dynamic analysis of maritime gasbag-type floating bridge subjected to moving loads

  • Wang, Huan-huan;Jin, Xian-long
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제8권2호
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    • pp.137-152
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    • 2016
  • This paper studied the dynamic response of a new gasbag-type floating bridge under the effect of a moving load. The arbitrary Lagrangian-Eulerian (ALE) method was used to simulate the movement of seawater and air, and the penalty-based method was used to study the coupling between gasbags and fluid. A three-dimensional finite element model of the floating bridge was established, and the numerical model was verified by comparing with the experimental results. In order to prevent resonance, the natural frequencies and flexural mode shapes were analyzed. Based on the initial state analysis, the dynamic responses of the floating bridge subjected to different moving loads were investigated. Vertical displacements and radial deformations of gasbags under different loads were compared, and principal stress distributions of gasbags were researched while driving. The hinge forces between adjacent modules were calculated to ensure the connection strength. Besides, the floating bridge under wave impacting was analyzed. Those results can provide references for the analysis and design of this new floating bridge.

Baffled fuel-storage container: parametric study on transient dynamic characteristics

  • Lee, Sang-Young;Cho, Jin-Rae;Park, Tae-Hak;Lee, Woo-Yong
    • Structural Engineering and Mechanics
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    • 제13권6호
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    • pp.653-670
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    • 2002
  • In order to ensure the structural dynamic stability of moving liquid-storage containers, the flow motion of interior liquid should be appropriately suppressed by means of mechanical devices such as the disc-type elastic baffle. In practice, the design of a suitable baffle requires a priori the parametric dynamic characteristics of storage containers, with respect to the design parameters of baffle, such as the installation location and inner-hole size, the baffle number, and so on. In this paper, we intend to investigate the parametric effect of the baffle parameters on the transient dynamic behavior of a cylindrical fuel-storage tank in an abrupt vertical acceleration motion. For this goal, we employ the ALE (arbitrary Lagrangian-Eulerian) kinematic description method incorporated with the finite element method.

Identification of flutter derivatives of bridge decks using CFD-based discrete-time aerodynamic models

  • Zhu, Zhiwen;Gu, Ming
    • Wind and Structures
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    • 제18권3호
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    • pp.215-233
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    • 2014
  • This paper presents a method to extract flutter derivatives of bridge decks based on a combination of the computational fluid dynamics (CFD), system simulations and system identifications. The incompressible solver adopts an Arbitrary Lagrangian-Eulerian (ALE) formulation with the finite volume discretization in space. The imposed sectional motion in heaving or pitching relies on exponential time series as input, with aerodynamic forces time histories acting on the section evaluated as output. System identifications are carried out to fit coefficients of the inputs and outputs of ARMA models, as to establish discrete-time aerodynamic models. System simulations of the established models are then performed as to obtain the lift and moment exerting on the sections to a sinusoidal displacement. It follows that flutter derivatives are identified. The present approaches are applied to a hexagon thin plate and a real bridge deck. The results are compared to the Theodorsen closed-form solution and those from wind tunnel tests. Satisfactory agreements are observed.

고층건물 내진설계용 TLD의 유한요소 해석에 관한 연구 (Study of Finite Element Analysis of Tuned Liquid Damper for Seismic Design of High-Rise Building)

  • 박성우;조진래;이재훈
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2006년도 정기 학술대회 논문집
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    • pp.597-602
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    • 2006
  • Many researches have been studied several vibration control device such as TMD and TLD to reduce the influence of wind or seismic waves for high-rise buildings. TLD provides some advantages such as easy installation and low maintenance cost. However, because of the difficulties in evaluating the characteristics of TLD, the dynamic characteristics of TLD must be investigated by experiment or analysis. In this study, the dynamic response analysis of structure with TLD was carried out to verify the vibration control ability of the proposed TLD for high-rise building with about 60 stories. A real seismic wave was used, and the parameter of interest was chosen by the height of water level in the same shape of water tank. From the numerical results, the responses of structure with water tank were confirmed to be safer than those of structure without water tank.

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Numerical Simulation of Blood Cell Motion in a Simple Shear Flow

  • Choi, Choeng-Ryul;Kim, Chang-Nyung;Hong, Tae-Hyub
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2008년도 추계학술대회A
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    • pp.1487-1491
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    • 2008
  • Detailed knowledge on the motion of blood cells flowing in micro-channels under simple shear flow and the influence of blood flow is essential to provide a better understanding on the blood rheological properties and blood cell aggregation. The microscopic behavior of red blood cell (RBCs) is numerically investigated using a fluid-structure interaction (FSI) method based on the Arbitrary-Lagrangian-Eulerian (ALE) approach and the dynamic mesh method (smoothing and remeshing) in FLUENT (ANSYS Inc., USA). The employed FSI method could be applied to the motions and deformations of a single blood cell and multiple blood cells, and the primary thrombogenesis caused by platelet aggregation. It is expected that, combined with a sophisticated large-scale computational technique, the simulation method will be useful for understanding the overall properties of blood flow from blood cellular level (microscopic) to the resulting rheological properties of blood as a mass (macroscopic).

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