• Title/Summary/Keyword: 유한요소-경계요소법

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Analysis of Two-Dimensional Sloshing Problems by a Lagrangian FEM (Lagrangian 유한요소법을 이용한 2차원 탱크내 유동해석)

  • P.M.,Lee;S.W.,Hong;S.Y.,Hong
    • Bulletin of the Society of Naval Architects of Korea
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    • v.27 no.2
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    • pp.21-30
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    • 1990
  • Theoretical and experimental techniques to analyze the two-dimensional liquid motion in a tank are discussed. A Lagrangian FEM with a velocity correction procedure is introduced to describe incompressible free surface fluid flow. A mesh rezoning technique is used to prevent strong distortion of finite elements in the Lagrangian description. Model test technique for sloshing tank is developed using a hydraulic type bench tester. The influence of the variation in the exciting frequency and amplitude are observed for various fill depths. The results of theoretical calculations are compared with those of experiments.

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Structural Anaysis of High Pressure Steam Turbine Casings for Power Plants Using the BEM and the FEM (경계요소법과 유한요소법을 이용한 발전용 고압 증기터빈 케이싱의 구조해석)

  • 조종래
    • Journal of Advanced Marine Engineering and Technology
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    • v.22 no.5
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    • pp.609-616
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    • 1998
  • Structural analyses are preformed for the high pressure steam turbine casings of the nuclear and the fossil power plants. An axisymmetric boundary element program for analysis of the casings is developed and applied in the process of practical structural design. To show the useful-ness and accuracy of the developed program results of the analysis are compared with those of the finite element analysis under hydrostatic test pressure, To check the validity of the axisymmetric numerical analysis of the casings the stresses resulting from the hydrostatic test pressure are measured using the strain gate. The results of the numerical analyses are compared and discussed with those of the experiments.

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소성가공 공정의 컴퓨터 응용설계를 위한 제반 과제

  • 김권희
    • Journal of the KSME
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    • v.29 no.3
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    • pp.294-305
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    • 1989
  • 소성가공 공정설계의 컴퓨터를 이용한 최적설계를 위하여 선결되어야 기술적 과제를 (i) 구성방 정식, (ii) 윤활 및 마찰조건, 그리고 (iii) 적응적 유한요소망 재구성법 등 3가지 분야로 대별하여 논의하였다. 적절히 선택된 마찰/구속조건 등 경계조건 (boundary condition) 과 적절한 유한 요소망의 구성을 통하여 최종제품의 형상을 만들어내기 위한 금형의 형상 등을 유한요소법으로 해석하여 공정설계상의 시행착오의 범위와 횟수를 줄일 수 있다(7,8). 또 하나의 예로서 자동 차의 자체 등 비교적 대형의 판재가공에서 펀치에 의한 본격적인 가공행정이 이루어지기 전에 판재 자체가 중력에 의하여 처지게 되는데 이러한 중력에 의한 피가공재의 초기 처짐은 최종제 품의 형상에 직접적인 영향을 주게 된다. 이 경우 기존의 유한요소 해석 기법을 사용하여 초 기처짐을 제어하기 위한 판재의 가공전 고정용 금형(binder wrap)의 최적설계를 훌륭히 수행할 수 있다. 이같이 현재의 유한요소 해석법은 많은 기술적 과제를 지니고 있으나 동시에 소성가 공의 컴퓨터 응용설계를 실현하기 위한 궁극적 도구로서 매우 큰 활용 잠재력을 지니고 있다.

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Modeling of Elastodynamic Problems in Finite Solid Media (유한 고체내 탄성동역학 문제의 모델링)

  • Cho, Youn-Ho
    • Journal of the Korean Society for Nondestructive Testing
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    • v.20 no.2
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    • pp.138-149
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    • 2000
  • Various modeling techniques for ultrasonic wave propagation and scattering problems in finite solid media are presented. Elastodynamic boundary value problems in inhomogeneous multi-layered plate-like structures are set up for modal analysis of guided wave propagation and numerically solved to obtain dispersion curves which show propagation characteristics of guided waves. As a powerful modeling tool to overcome such numerical difficulties in wave scattering problems as the geometrical complexity and mode conversion, the Boundary Element Method(BEM) is introduced and is combined with the normal mode expansion technique to develop the hybrid BEM, an efficient technique for modeling multi mode conversion of guided wave scattering problems. Time dependent wave forms are obtained through the inverse Fourier transformation of the numerical solutions in the frequency domain. 3D BEM program development is underway to model more practical ultrasonic wave signals. Some encouraging numerical results have recently been obtained in comparison with the analytical solutions for wave propagation in a bar subjected to time harmonic longitudinal excitation. It is expected that the presented modeling techniques for elastic wave propagation and scattering can be applied to establish quantitative nondestructive evaluation techniques in various ways.

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Elastic Wave Field Calculations (탄성파의 변형 및 응력 계산에 관한 연구)

  • 이정기
    • Computational Structural Engineering
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    • v.10 no.2
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    • pp.213-223
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    • 1997
  • Calculation of elastic wave fields has important applications in a variety of engineering fields including NDE (Non-destructive evaluation). Scattering problems have been investigated by numerous authors with different solution schemes. For simple geometries of the scatterers (e.g., cylinders or spheres), the analysis of steady-state elastic wave scattering has been carried out using analytical techniques. For arbitrary geometries and multiple inclusions, numerical methods have been developed. Special finite element methods, e.g., the infinite element method and a hybrid method called the Global-Local finite element method have also been developed for this purpose. Recently, the boundary integral equation method has been used successfully to solve scattering problems. In this paper, a volume integral equation method (VIEM) is proposed as a new numerical solution scheme for the solution of general elasto-dynamic problems in unbounded solids containing multiple inclusions and voids or cracks. A boundary integral equation method (BIEM) is also presented for elastic wave scattering problems. The relative advantage of the volume and boundary integral equation methods for solving scattering problems is discussed.

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Mesh Design for the Finite Element Analysis of Thin Structures with Boundary Layers (경계층을 가진 박판구조물의 유한요소 해석을 위한 체눈 디자인)

  • 조진래
    • Computational Structural Engineering
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    • v.9 no.4
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    • pp.165-172
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    • 1996
  • For thin elastic structures such as beams, arches, plates and shells, there may exist the boundary layer in the narrow thin region neighborhood of boundaries, where the solution displays the singular behavior exponentially decaying in the normal direction to the boundary. In the finite element analysis of these structures, finite element mesh patterns have a significant role to capture this singularity. This paper introduces the analytic study of this problem and provides a guideline to construct optimal mesh patterns together with numerical experiments.

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Performance Analysis of Axisymmetric Mufflers by BEM (경계요소법을 이용한 축대칭 소음기의 성능해석)

  • 임정빈;정갑철;권영필
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 1995.04a
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    • pp.184-189
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    • 1995
  • 자동차 흡배기계의 음향성능 해석에 일반적으로 사용되고 있는 방법은 평면과 이론에 의한 1차원적인 해석방법이다. 그러나 관심 주파수 대역이 높거나 대상물의 형상이 복잡한 경우, 또는 내부에 흡음재가 부착되어 있는 경우에는 이러한 1차원 해석으로는 만족할만한 결과를 얻을 수 없으므로 경계요소법(BEM), 유한요소법(FEM) 등과 같은 수치해석 방법이 이용되고 있다. 본 연구에서는 축대칭 단순팽창형, 연장관형, 다공형등 반사형 소음기와 흡음형 소음기의 음향성능을 해석하기 위한 경계요소법 프로그램을 개발하고, 소음기 성능의 주파수 특성을 구하여 실험결과 및 1차원 해석 결과와 비교 고찰하였다.

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Dynamic Characteristics of Nonlinear Beam Shear Deformation (전단변형을 고려한 비선형 보의 동적특성에 관한 연구)

  • Park, Sungjin;Baek, Jooeun
    • Journal of the Society of Disaster Information
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    • v.12 no.1
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    • pp.69-73
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    • 2016
  • In this study, the applicability and validity of collocation method to nonlinear vibration issues in comparison to other solutions are confirmed, and the applicability of collocation method to nonlinear dynamic response issues in comparison to the response curve with F.E.M results is examined. Also, it is also examined how the influence of axial inertia varies according to the size of slenderness ratio.

Development of Sound Radiation Analysis System Using the Results of Power Flow Finite Element Method (파워흐름유한요소법의 진동해석 결과를 이용한 구조물의 방사소음 해석시스템 개발)

  • 이호원;홍석윤
    • The Journal of the Acoustical Society of Korea
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    • v.20 no.7
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    • pp.21-30
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    • 2001
  • The analysis system implementing a serial process from structural vibration to sound radiation has been developed using both the power flow finite element method (PFFEM) known as a new vibrational analysis technique in medium to high frequency ranges and the acoustic boundary element method (BEM) which is effective in analyzing the sound radiation problems. The vibration analysis for arbitrary shape structures composed of plates is performed, and using the vibration energy density obtained from this analysis as the velocity boundary conditions for an acoustic analysis, vibro-acoustic analysis has been processed. To verify the developed system, we select a simple structure model and compare the results of developed system with those of SYSNOISE, and also the developed system is applied for the vibro-acoustic analysis of various structures in shapes.

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