• 제목/요약/키워드: 3D nonlinear finite element analysis

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Effect of axial loading conditions and confinement type on concrete-steel composite behavior

  • Nematzadeh, Mahdi;Fazli, Saeed
    • Computers and Concrete
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    • 제25권2호
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    • pp.95-109
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    • 2020
  • This paper aims to analytically study the effect of loading conditions and confinement type on the mechanical properties of the concrete-steel composite columns under axial compressive loading. The axial loading is applied to the composite columns in the two ways; only on the concrete core, and on the concrete core and steel tube simultaneously, which are called steel tube-confined concrete (STCC) and concrete-filled steel tube (CFST) columns, respectively. In addition, the confinement is investigated in the three types of passive, short-term active and long-term active confinement. Nonlinear finite element 3D models for analyzing these columns are developed using the ABAQUS program, and then these models are verified with respect to the recent experimental results reported by the authors on the STCC and CFST columns experiencing active and passive confinements. Axial and lateral stress-strain curves as well as the failure mode for qualitative verification, and compressive strength for quantitative verification are considered. It is found that there is a good consistency between the finite element analysis results and the experimental ones. In addition, a parametric study is performed to evaluate the effect of axial loading type, prestressing ratio, concrete compressive strength and steel tube diameter-to-wall thickness ratio on the compressive behavior of the composite columns. Finally, the compressive strength results of CFST specimens obtained via the finite element analysis are compared with the values specified by the international codes and standards including EC4, CSA, ACI-318, and AISC, with the results showing that ACI-318 and AISC underestimate the compressive strength of the composite columns, while EC4 and CSA codes present overestimated values.

Analytical and finite element method for the bending analysis of the thick porous functionally graded sandwich plate including thickness stretching effect

  • Imad Benameur;Youcef Beldjelili;Abdelouahed Tounsi
    • Structural Engineering and Mechanics
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    • 제85권5호
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    • pp.593-605
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    • 2023
  • This work presents a comparison between analytical and finite element analysis for bending of porous sandwich functionally graded material (FGM) plates. The plate is rectangular and simply supported under static sinusoidal loading. Material properties of FGM are assumed to vary continuously across the face sheets thickness according to a power-law function in terms of the volume fractions of the constituents while the core is homogeneous. Four types of porosity are considered. A refined higher-order shear with normal deformation theory is used. The number of unknowns in this theory is five, as against six or more in other shear and normal deformation theories. This theory assumes the nonlinear variation of transverse shear stresses and satisfies its nullity in the top and bottom surfaces of the plate without the use of a shear correction factor. The governing equations of equilibrium are derived from the virtual work principle. The Navier approach is used to solve equilibrium equations. The constitutive law of the porous FGM sandwich plate is implemented for a 3D finite element through a subroutine in FORTRAN (UMAT) in Abaqus software. Results show good agreement between the finite element model and the analytical method for some results, but the analytical method keeps giving symmetric results even with the thickness stretching effect and load applied to the top surface of the sandwich.

직교이방성 적층판의 Hole단부의 3D 비선형 층간응력 해석 (3D Non-linear Analysis of Interlaminar Stress around the Hole Edge of Orthotropic Laminates)

  • 송관형
    • 한국해양공학회지
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    • 제18권5호
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    • pp.36-42
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    • 2004
  • Orthotropic laminates, such as [$0^{\circ}6$/$90^{\circ}6$]s and [$90^{\circ}6$/$0^{\circ}6$]s, were performed, using a commercial nonlinear finite element method. Interlaminar stress distributions, around the hole curve free-edge, were calculated. The delamination bearing strengths of pin joints were predicted, using the modified delamination failure criterion. These stress distributions were presented along the radial lines and around the free-edge of the hole. Further, three-dimensional non-linear contact analysis of orthotropic laminates was conducted to investigate the effect of friction. In this paper, laminates with a circular hole were taken to study interlaminar stresses the curved edge. This study may assist in the design of a thick composite laminate with mechanically pin joints.

Modeling of nonlinear cyclic response of shear-deficient RC T-beams strengthened with side bonded CFRP fabric strips

  • Hawileh, Rami A.;Abdalla, Jamal A.;Tanarslan, Murat H.;Naser, Mohannad Z.
    • Computers and Concrete
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    • 제8권2호
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    • pp.193-206
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    • 2011
  • The use of Carbon Fiber Reinforced Polymers (CFRP) to strengthen reinforced concrete beams under bending and shear has gained rapid growth in recent years. The performance of shear strengthened beams with externally bonded CFRP laminate or fabric strips is raising many concerns when the beam is loaded under cyclic loading. Such concerns warrant experimental, analytical and numerical investigation of such beams under cyclic loading. To date, limited investigations have been carried out to address this concern. This paper presents a numerical investigation by developing a nonlinear finite element (FE) model to study the response of a cantilever reinforced concrete T-beam strengthened in shear with side bonded CFRP fabric strips and subjected to cyclic loading. A detailed 3D nonlinear finite element model that takes into account the orthotropic nature of the polymer's fibers is developed. In order to simulate the bond between the CFRP sheets and concrete, a layer having the material properties of the adhesive epoxy resin is introduced in the model as an interface between the CFRP sheets and concrete surface. Appropriate numerical modeling strategies were used and the response envelope and the load-displacement hysteresis loops of the FE model were compared with the experimental response at all stages of the cyclic loading. It is observed that the responses of the FE beam model are in good agreement with those of the experimental test. A parametric study was conducted using the validated FE model to investigate the effect of spacing between CFRP sheets, number of CFRP layers, and fiber orientation on the overall performance of the T-beam. It is concluded that successful FE modeling provides a practical and economical tool to investigate the behavior of such strengthened beams when subjected to cyclic loading.

원심성형 고성능 철근콘크리트 말뚝의 휨 성능 연구 (Flexural Performance of Enhanced Spun High Strength RC Piles)

  • 황훈희;배재현;주상훈;권의성
    • 한국안전학회지
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    • 제33권3호
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    • pp.52-57
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    • 2018
  • The pile construction method is changing from the pile driving operation to the injected precast pile method. It is to prevent environmental damage and to minimize complaints caused by noise. Therefore, economic alternatives optimized for the injected precast pile method are required. In this study, the enhanced spun reinforced concrete piles manufactured by high strength materials were proposed. Experimental tests were conducted to evaluate their structural safety and nonlinear finite element analysis was performed to improve the reliability of experimental results. The experimental results and the analytical results were in good agreement with each other and the proposed enhanced spun reinforced concrete pile has better performance than that required by the design. However, the performance of the joint using the existing method used in the PHC pile was considered to be insufficient.

Coupled CFD-FEM simulation of hydrodynamic responses of a CALM buoy

  • Gu, Haoyuan;Chen, Hamn-Ching;Zhao, Linyue
    • Ocean Systems Engineering
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    • 제9권1호
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    • pp.21-42
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    • 2019
  • In this paper, the Finite-Analytic Navier-Stokes (FANS) code is coupled with an in-house finite-element code to study the dynamic interaction between a floating buoy and its mooring system. Hydrodynamic loads on the buoy are predicted with the FANS module, in which Large Eddy Simulation (LES) is used as the turbulence model. The mooring lines are modeled based on a slender body theory. Their dynamic responses are simulated with a nonlinear finite element module, MOORING3D. The two modules are coupled by transferring the forces and displacements of the buoy and its mooring system at their connections through an interface module. A free-decay model test was used to calibrate the coupled method. In addition, to investigate the capability of the present coupled method, numerical simulations of two degree-of-freedom vortex-induced motion of a CALM buoy in uniform currents were performed. With the study it can be verified that accurate predictions of the motion responses and tension responses of the CALM buoy system can be made with the coupling CFD-FEM method.

자기공명영상 기반 3차원 유한요소모델링을 통한 무릎관절의 파손평가 (Failure Study for Knee Joint Through 3D FE Modeling Based on MR Images)

  • 배지용;박진홍;송성근;박상진;전인수;송은규
    • 한국전산구조공학회논문집
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    • 제22권6호
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    • pp.533-539
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    • 2009
  • 본 연구에서는 먼저 완전 신전상태의 병변이 없는 26세 남자의 자기공명영상이미지를 기반으로 대퇴골, 경골, 관절연골, 반월상 연골의 정밀한 3차원 재구축을 실시하였다. 재구축된 무릎모델에 인대와 건을 생리학적으로 적합한 위치에 부착시켜 3차원 유한요소모델을 완성시켰다. 뼈, 관절연골, 반월상 연골은 균질성, 등방성 선형탄성거동을 보이는 것으로 고려하였으며, 인대와 건은 트러스 요소와 선형, 비선형 스프링 요소를 사용하여 모델링하였다. 제작된 무릎관절의 유한요소모델을 ABAQUS를 사용하여 비선형 접촉해석을 수행하였다. 수치해석결과로서 조직의 손상과 환자의 통증을 추정하기 위한 중요매개변수로 간주될 수 있는 관절연골과 반월상연골의 접촉압력과 von Mises 응력분포를 계산하였으며, 관절연골과 반월상 연골의 접촉압력과 von Mises 응력분포를 분석하여 무릎관절에 대한 파손평가를 실시하였다.

열성형공정의 3차원 유한요소해석 (3-Dimensional Finite Element Analysis of Thermoforming Processes)

  • G.J. Nam;D.S. Son;Lee, J.W.
    • 유변학
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    • 제11권1호
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    • pp.18-27
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    • 1999
  • 본 연구에서는 3차원 열성형 공정 알고리듬과 이에 membrane approximation을 도입한 근사적인 알고리듬을 개발하였고, 이 알고리듬을 이용하여 몇몇 열성형계에 대한 수치모사를 수행하여 그 결과를 비교 분석하였다. 3차원 알고리듬의 경우에는 구성한 유한요소 평형 방정식에 벌칙함수를 도입하여 비압축성 조건을 만족시켜 해를 얻었으며, membrane approximation을 도입한 알고리듬의 경우에는 두께 방향의 응력을 무시하여 구성한 방정식으로부터 해를 얻었다. 구성방정식은 2nd Piola-Kirchhoff 응력 텐서와 Cauchy-Green 변형 텐서를 사용하여 표현하였고 수지의 물질 모델식으로는 2항의 Mooney-Rivlin 모델을 사용하였으며, total Lagrangian coordinate를 도입하여 지배방정식을 유한요소화함으로써 알고리듬을 구성하였다. 대상계로 선정한 사각평판 수지의 자유 부풀림 거동과 금형이 있는 경우에서의 수지의 부풀림 거동을 3차원 알고리듬과 membrane approximation 알고리듬을 각각 이용하여 분석하였으며 3차원 알고리듬의 경우 clamping 부분의 경계조건을 달리하여 결과를 비교하였다. 금형이 있는 계에 대해서는 slip 경계조건과 no-slip 경계조건을 각각 부여하여 수치모사를 수행, 수지의 변형거동과 응력분포를 비교 분석하였으며, 두께를 달리 한 수지에 대해 두께 방향의 응력을 비교 분석함으로써 membrane approximation 알고리듬의 한계에 대하여 논하였다. 한편 수지 온도 변화에 따른 성형품의 두께 분포의 변화를 살펴보기 위하여 ABS 수지를 대상으로 하여 $137.8^{\circ}C$에서 $171.1^{\circ}C$사이의 온도에서 수행한 인장실험 데이터를 수치모사에 사용하였다. 그 결과 수지의 온도가 높을수록 두께의 표준편차가감소하여 균일한 두께 분포를 얻을 수 있음을 확인하였고 이는 수지의 흐름성이 증가함으로써 나타나는 현상으로 해석할 수 있다.

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Evaluating performance of the post-tensioned tapered steel beams with shape memory alloy tendons

  • Hosseinnejad, Hossein;Lotfollahi-Yaghin, Mohammad Ali;Hosseinzadeh, Yousef;Maleki, Ahmad
    • Earthquakes and Structures
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    • 제23권3호
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    • pp.221-229
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    • 2022
  • The external post-tension technique is one of the best strengthening methods for reinforcement and improvement of the various steel structures and substructure components such as beams. In the present work, the load carrying capacity of the post-tensioned tapered steel beams with external shape memory alloy (SMA) tendons are studied. 3D nonlinear finite element method with ABAQUS software is used to determine the effects of the increase in the flexural strength, and the improvement of the load carrying capacity. The effect of the different parameters, such as geometrical characteristics and the post-tension force applied to the tendons are also studied in this research. The results reveal that the external post-tension with SMA tendons in comparison with the steel tendons causes a significant improvement of the loading capacity. According to this, using SMA tendon for the reinforcement of the tapered beams causes a decrease in weight of these structures and as a consequence causes economic benefits for their application. This method can be used extensively for steel beams due to low executive costs and simplicity of the operation for post-tension.

힌지 연결된 분할형 동체를 갖는 유도탄의 고유진동특성 연구 (A Study on Natural Frequencies of a Missile having Split Airframes with Hinged Joints)

  • 강춘길;원명식
    • 한국군사과학기술학회지
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    • 제10권4호
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    • pp.176-184
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    • 2007
  • The missile for this study has shown different natural frequency characteristics depending on the test conditions; natural frequencies obtained from its flight test are higher than those in its ground test. It was found that the hinged joints connecting front airframe to rear one had the nonlinear stiffness and caused the missile to show very complex dynamic characteristics. The angular stiffness at hinged joints was calculated using 3D finite element analysis, and it was verified that there was a highly nonlinear relationship between angular stiffness and external load. Natural frequencies calculated considering the nonlinearity of angular stiffness were nearly the same as test results. Through this study, the dynamic characteristics of a missile having split airframes with hinged joints could be clearly identified and a way of maintaining its natural frequencies consistent was generated.