• 제목/요약/키워드: elastic strain energy

검색결과 282건 처리시간 0.029초

Implementation of double scalar elastic damage constitutive model in UMAT interface

  • Liu, Pan Pan;Shen, Bo
    • Computers and Concrete
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    • 제27권2호
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    • pp.153-162
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    • 2021
  • This paper aims to simulate the isotropic elastic damage theory of Liu Jun (2012) using the self-programmed UMAT subroutine in the interface of ABAQUS. Liu Jun (2012)'s method based on the mechanic theory can not be used interactively with the currently commonly used finite element software ABAQUS. The advantage of this method in the paper is that it can interact with ABAQUS and provide a constitutive program framework that can be modified according to user need. The model retains the two scalar damage variables and the corresponding two energy dissipation mechanisms and damage criteria for considering the tensile and compressive asymmetry of concrete. Taking C45 concrete as an example, the relevant damage evolution parameters of its tensile and compressive constitutive model are given. The study demonstrates that the uniaxial tensile stress calculated by the subroutine is almost the same as the Chinese Concrete Design Specification (GB50010) before the peak stress, but ends soon after the peak stress. The stress-strain curve of uniaxial compression calculated by the subroutine is in good agreement with the peak stress in Chinese Concrete Design Specification (GB50010), but there is a certain deviation in the descending stage. In addition, this paper uses the newly compiled subroutine to simulate the shear bearing capacity of the shear key in a new structural system, namely the open-web sandwich slab. The results show that the damage constitutive subroutine has certain reliability.

지진파에 의한 매설관로의 좌굴 (Buckling of Buriend Pipelines due to Seismic Waves)

  • 이종세
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 1999년도 춘계 학술발표회 논문집 Proceedings of EESK Conference-Spring
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    • pp.109-118
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    • 1999
  • Lifeline system such as oil or gas pipelines and water supply facilities are vulneratble to seismic damages because they are widely exposed to ground failures. Most seismic design criteria of buried pipelines are based on the notion that the longitudinal compressive strain and therefore buckling controls the design. Buckling analysis of buried pipelines subjected to seismic loading is performed by considering the seismic load as the sinusoidally distributed compressive load on the beam on elastic foundation in contrast to existing studies where the buckling load is treated as an end load on the beam column, An approximated analytical solution is obtained by the energy method and its validity is confirmed by the linearized finite element buckling analysis. The results show the beam mode buckling because longitudinal strains at the buckling loads are substantially lower than the strain at the onset of local buckling.

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Earthquake effects on the energy demand of tall reinforced concrete walls with buckling-restrained brace outriggers

  • Beiraghi, Hamid
    • Structural Engineering and Mechanics
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    • 제63권4호
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    • pp.521-536
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    • 2017
  • Reinforced concrete core-wall structures with buckling-restrained brace outriggers are interesting systems which have the ability to absorb and dissipate energy during strong earthquakes. Outriggers can change the energy demand in a tall building. In this paper, the energy demand was studied by using the nonlinear time history analysis for the mentioned systems. First, the structures were designed according to the prescriptive codes. In the dynamic analysis, three approaches for the core-wall were investigated: single plastic hinge (SPH), three plastic hinge (TPH) and extended plastic hinge (EPH). For SPH approach, only one plastic hinge is allowed at the core-wall base. For TPH approach, three plastic hinges are allowed, one at the base and two others at the upper levels. For EPH approach, the plasticity can extend anywhere in the wall. The kinetic, elastic strain, inelastic and damping energy demand subjected to forward directivity near-fault and ordinary far-fault earthquakes were studied. In SPH approach for all near-fault and far-fault events, on average, more than 65 percent of inelastic energy is absorbed by buckling-restrained braces in outrigger. While in TPH and EPH approaches, outrigger contribution to inelastic energy demand is reduced. The contribution of outrigger to inelastic energy absorption for the TPH and EPH approaches does not differ significantly. The values are approximately 25 and 30 percent, respectively.

저속 충격하에서의 금속복합재료의 동적 특성 (Dynamic Behaviors of Metal Matrix Composites in Low Velocity Impact)

  • 남현욱;;;한경섭
    • Composites Research
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    • 제12권1호
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    • pp.68-75
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    • 1999
  • 본 연구에서는 저속 충격에서 충격 속도에 따른 금속복합재료의 동적 거동을 연구하였다. 시험에 사용된 재료는 모재로 AC8A와 보강재로 알루미나($Al_2O_3$)와 탄소를 사용하였으며 용탕 주조법을 이용하여 금속복합재료를 제조하였다. 금속복합재료에는 15%의 부피분율을 가진 알루미나 예비성형체와 알루미나와 탄소를 각각 12%와 3% 사용한 혼합 에비성형체가 사용되었다. 제조된 금속복합재료는 인장 시험과 진동 시험을 통해 인장 강도와 탄성계수를 구하였으며, 저주파 여파기(low pass filter)와 계장화 충격 시험기를 이용하여 충격 속도에 따른 금속복합재료의 충격 거동을 연구하였다. 저주파 여파기를 이용함으로써 충격 속도에 관계없이 안정적인 실험치를 확보할 수 있었다. 충격 속도의 증가에 따라 모재와 금속복합재료의 충격에너지는 증가하였으나, 동적인성치는 일정한 값을 보였다. 충격 속도가 증가할수록 충격에너지 중 균열전파에너지의 향상이 두드러졌으며, 재료의 변형량이 증가하였다. 충격에너지 중 균열개시에너지와 동적파괴인성치의 관계를 설명하기 위하여 변형율 에너지와 노치에서의 응력 분포를 이용하여 간단한 모델을 제시하였으며, 이로부터 균열개시에너지는 동적 파괴 인성치의 자승에 비례하고 탄성계수에 반비례하는 것을 보였다.

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터널막장 선행보강 효과에 관한 이론적.수치해석적 연구 (A Theoretical and Numerical Study on the Effects of Prereinforcement of Tunnel Face)

  • 김광진;문현구
    • 터널과지하공간
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    • 제11권4호
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    • pp.328-338
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    • 2001
  • Fiber Glass Tube(FGT) 또는 steel pipe를 이용한 터널막장의 수평보강공법 그리고 강관다단공법 등은 터널 굴착시 터널막장의 안정성이 확보되지 못할 경우에 흔히 사용된다. 그러나 이러한 공법이 사용된 터널의 역학적 거동은 아직 충분히 알려진 바가 없으며, 따라서 설계와 전산해석 과정에서 경험에 의존하는 경우가 많고 공법의 합리적인 적용이 어려운 실정이다. 본 연구에서는 복합체 역학을 이용한 보강공법의 전산해석 단순화 방법의 적용성을 검증하였고, 강화지반의 등가탄성계수는 평균장 이론과 변형률 에너지 이론을 사용하여 도출하였다. 다양한 보강패턴에 따른 터널막장의 거동에 관한 매개변수 연구를 수행하였다.

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횡방향 하중을 받는 금속모재 복합재료의 파손구조 (Failure Mechanism of Metal Matrix Composites Subject to Transverse Loading)

  • 함종호;이형일;조종두
    • 대한기계학회논문집A
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    • 제24권6호
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    • pp.1456-1469
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    • 2000
  • Mechanical behaviors of uniaxially fiber-reinforced metal matrix composites under transverse loading conditions were studied at room and elevated temperatures. A mono-filament composite was selecte d as a representative analysis model with perfectly bonded fiber/matrix interface assumption. The elastic-plastic and visco-plastic models were investigated by both theoretical and numerical methods. The product of triaxiality factor and effective strain as well as stress components and strain energy was obtained as a function of location to estimate the failure sites in fiber-reinforced metal matrix composite. Results showed that fiber/ matrix interfacial debond plays a key role for local failure at the room temperature, while void creation and growth in addition to the interfacial debond are major concerns at the elevated temperature. It was also shown that there would be an optimal diameter of fiber for the strong fiber-reinforced metal matrix composite.

온간 성형 하에서 A1 합금 분말의 정밀정형에 대한 유한요소해석 (A Finite Element Analysis for Near-net-shape Forming of A16061 Powder under Warm Pressing)

  • 김종광;양훈철;김기태
    • 대한기계학회논문집A
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    • 제27권11호
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    • pp.1897-1906
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    • 2003
  • A finite element analysis for near-net-shape forming of A16061 powder was performed under warm rubber isostatic pressing and warm die pressing. The advantages of warm compaction by rubber isostatic pressing were discussed to obtain a part with better density distributions. The shape of rubber mold was designed by determining a cavity shape that provides a desired shape of the final powder compact. To simulate densification and deformed shape of a powder compact during pressing, the elastoplastic constitutive equation based on yield function of Shima-Oyane was implemented into a finite element program(ABAQUS). The hyperelastic constitutive equation based on the Ogden strain energy Potential was employed to analyze nonlinear elastic response of rubber. Finite element results were compared with experimental data for Al6061 powder compacts under warm die pressing and warm isostatic pressing.

Development of miniature bar-type structural fuses with cold formed bolted connections

  • Guan, Dongzhi;Yang, Sen;Jia, Liang-Jiu;Guo, Zhengxing
    • Steel and Composite Structures
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    • 제34권1호
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    • pp.53-73
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    • 2020
  • A novel all-steel miniature bar-type structural fuse (MBSF) with cold formed bolted connections is developed in this study, which consists of a central energy dissipation core cut from a smooth round bar, an external confining tube and nuts. Three types of cross sections for the central energy dissipation core, i.e., triple-cut, double-cut and single-cut cross sections, were studied. Totally 18 specimens were axially tested under either symmetric or asymmetric cyclic loading histories, where the parameters such as cut cross sectional area ratio, length of the yielding portion and cross sectional type were investigated. Numerical simulation of 2 representative specimens were also conducted. An analytical model to evaluate the bending failure at the elastic portion was proposed, and a design method to avoid this failure mode was also presented. The experimental results show that the proposed MBSFs exhibit satisfactory hysteretic performance under both the two cyclic loading histories. Average strain values of 8% and 4% are found to be respectively suitable for designing the new MBSFs as the ultimate strain under the symmetric and asymmetric cyclic loadings.

인공위성 태양전지판의 전개에 관한 연구 (A Study on the Solar Panel Deployment of a Satellite)

  • 서종휘;한상원;박태원;채장수;서현석
    • 한국항공우주학회지
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    • 제31권4호
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    • pp.53-59
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    • 2003
  • 다목적실용위성(KOMPASA) 태양전지판을 전개하기 위해 사용되는 Strain Energy Hinge(SEH)는 신뢰성 있는 전개를 보장하지만, 태양전지판이 완전 전개되는 순간, 큰 좌굴충격력을 유발하여 위성의 구조적 안정성이나 자세제어에 심각한 영향을 미칠 수 있으므로 전개장치의 설계단계에서부터 동역학적인 평가가 필요하다. 더욱이 위성의 임무가 다양해짐에 따라 태양전지판의 면적이 커지면서 보다 실제적이고 정확한 해석을 위해서는 태양전지판의 탄성변형 효과도 고려되어야 한다. 본 연구에서는 SE H를 이용하여 탄성효과가 큰 태양전지판을 전개할 때 발생하는 동적 특성들을 예측할 수 있도록 동력학 해석절차를 제시하였으며 다목적실용위성 2호의 태양전지판 전개시험을 통하여 해석결과의 신뢰성을 검증하였다.

에너지법에 의한 축대칭 디프드로잉의 해석 (An Analysis of Axisymmetric Deep Drawing by the Energy Method)

  • 양동열;이항수
    • 대한기계학회논문집
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    • 제17권1호
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    • pp.51-61
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    • 1993
  • 본 연구에서는 에너지법으로 축대칭 박판성형 공정을 해석할 때, Lee와 Yang 이 제안한 방법을 적용함에 있어 굽힘효과를 효과적으로 고려할 수 있는 방법을 제안 하고 축대칭 컵드로잉 공정을 해석하여 본 이론의 타당성을 입증하고자 한다. 굽힘 효과는 박판소재를 몇개의 층(layer)으로 나눈 뒤, 각 층에서 소비되는 변형에너지를 합하여 전체 에너지를 최소화시킴으로써 고려하였다. 해석시 펀치 목부분과 다이목 부분에서의 접촉압력은 각각 균일한 분포를 갖는 것으로 가정하였다. 본 이론의 타 당성을 입증하기 위하여 계산결과를 실험치 및 탄소성 유한요소해석 결과와 비교하였 다.