• 제목/요약/키워드: Thermal Buckling

검색결과 228건 처리시간 0.022초

Wire-woven Bulk Kagome 의 파손 메커니즘 분석 (Analysis of Failure Mechanism for Wire-woven Bulk Kaogme)

  • 이병곤;최지은;강기주;전인수
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회A
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    • pp.1690-1695
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    • 2007
  • Lightweight metallic truss structures with open, periodic cell are currently being investigated because of their multi-functionality such as thermal management and load bearing. The Kagome truss PCM has been proved that it has higher resistance to plastic buckling, more plastic deformation energy and lower anisotropy than other truss PCMs. The subject of this paper is an examination of the failure mechanism of Wire woven Bulk Kagome(WBK). To address this issue, the out-of-plane compressive responses of the WBK has been measured and compared with theoretical and finite element (FE) predictions. For the experiment, 2 multi-layered WBK are fabricated and 3 specimens are prepared. For the theoretical analysis, the brazed joints of each wire in WBK are modeled as the pin-joint. Then, the peak stress of compressive behavior and elastic modulus are calculated based on the equilibrium equation and energy method. The mechanical structure with five by five cells on the plane are constructed is modeled using the commercial code, PATRAN 2005. and the analysis is achieved by the commercial FE code ABAQUS version 6.5 under the incremental theory of plasticity.

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Numerical analysis of spalling of concrete cover at high temperature

  • Ozbolt, Josko;Periskic, Goran;Reinhardt, Hans-Wolf;Eligehausen, Rolf
    • Computers and Concrete
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    • 제5권4호
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    • pp.279-293
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    • 2008
  • In the present paper a 3D thermo-hygro-mechanical model for concrete is used to study explosive spalling of concrete cover at high temperature. For a given boundary conditions the distribution of moisture, pore pressure, temperature, stresses and strains are calculated by employing a three-dimensional transient finite element analysis. The used thermo-hygro-mechanical model accounts for the interaction between hygral and thermal properties of concrete. Moreover, these properties are coupled with the mechanical properties of concrete, i.e., it is assumed that the mechanical properties (damage) have an effect on distribution of moisture (pore pressure) and temperature. Stresses in concrete are calculated by employing temperature dependent microplane model. To study explosive spalling of concrete cover, a 3D finite element analysis of a concrete slab, which was locally exposed to high temperature, is performed. It is shown that relatively high pore pressure in concrete can cause explosive spalling. The numerical results indicate that the governing parameter that controls spalling is permeability of concrete. It is also shown that possible buckling of a concrete layer in the spalling zone increases the risk for explosive spalling.

The Epoxy-metal Interphase and Its Incidence on Practical Adhesion

  • Roche, Alain Andre;Aufray, Maelenn
    • 접착 및 계면
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    • 제4권2호
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    • pp.1-9
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    • 2003
  • Epoxy-amine liquid prepolymers are extensively applied onto metallic substrates and cured to obtain painted materials or bonded joint structures. Overall performances of such systems depend on the created interphase between the organic layer and the substrate. When epoxy-amine liquid mixtures are applied onto more or less hydrated metallic oxide layer, concomitant amine chemical sorption and hydroxide dissolution appear lending to the chelate formation. As soon as the chelate concentration is higher than the solubility product, these species crystallize as sharp needles. Moreover, intrinsic and thermal residual stresses are developed within painted or bonded systems. When residual stresses are higher than the organic layer/substrate adhesion, buckling, blistering, debonding may occur leading to a catastrophic drop of system performances. Practical adhesion can be evaluated with either ultimate parameters (Fmax or Dmax) or the critical strain energy release rate, using the three point flexure test (ISO 14679-1997). We observe that, for the same system, the ultimate load decreases while residual stresses increase when the liquid/solid time increases. Ultimate loads and residual stresses depend on the metallic surface treatment. For these systems, the critical strain energy release rate which takes into account the residual stress profile and the Young's modulus gradient remains quite constant whatever the metallic surface treatment was. These variations will be discussed and correlate to the formation mechanisms of the interphase.

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강섬유 콘크리트 혼입율에 따른 내부앵커형 콘크리트 충전기둥 내화성능에 관한 해석적 연구 (Analysis Study on Fire Performance with Internal Anchored Concrete Filled Steel Tube Columns According to Percent of Steel-Fibers)

  • 김선희;염경수;김용환;최성모
    • 한국강구조학회 논문집
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    • 제28권1호
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    • pp.23-34
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    • 2016
  • 콘크리트 충전강관 기둥은 강관의 구속효과에 의해 콘크리트의 압축내력 상승과, 콘크리트에 의한 강관의 국부좌굴 보강효과에 의해 부재내력이 상승하고 뛰어난 변형성능을 발휘한다. 하지만, 기둥단면이 커질 경우 합성효과를 발휘하기 위하여 스터드 볼트나 후 시공 앵커 볼트를 사용해야 하는 시공상의 문제점이 발생된다. 이를 극복함과 동시에 합성효과를 증대시키기 위한 방안으로 내부에 리브가 설치된 용접조립 기둥이 소개되었다. 내부 리브는 콘크리트와 맞물려 있어 리브의 변형은 콘크리트의 균열을 촉진시키는 역할을 동반하게 된다. 이러한 잠재적인 문제에 대한 해결책은 강관 리브의 변형에 저항할 수 있도록 콘크리트 인성을 증가시킬 수 있는 방안이 필요하다. 언급된 두 가지의 문제점이 효과적으로 해결될 경우 용접조립 각형강관 기둥은 내화성능 확보가 가능하다고 판단된다. 본 연구에서는 해결방안으로 내부 콘크리트를 강섬유와 혼입하여 기둥 자체의 연성과 인성을 증대시키는 것에 중점을 맞추고 있다. 내화성능 평가를 위한 시험체는 총 8개 로 하중비에 따른 재하가열 실험을 실시하고 화재 전후 거동과 열 변형 능력을 주요변수별로 분석하였다. 실험결과와 선행연구 비교를 통해 열 전달과 열응력 해석 모델의 신뢰성을 확보하였으며, 강섬유 혼입율에 따른 변수해석을 수행하였다.

복합스터드의 압축 좌굴 거동 (Behavior of Hybrid Stud under Compressive Load)

  • 이상섭;배규웅
    • 한국강구조학회 논문집
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    • 제16권5호통권72호
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    • pp.609-619
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    • 2004
  • 유럽을 중심으로 스틸스터드의 약점으로 지목 받고 있는 열교현상을 억제하기 위한 스터드 개선 연구가 활발히 진행되고 있다. 이 연구는 크게 마감재와 접촉 면적을 줄이는 방법, 웨브면에서 열전달 경로를 늘이는 방법, 열전도성이 낮은 소재를 사용하는 방법, 그리고 스터드를 피복하는 방법으로 구분할 수 있다. 비교적 저층의 주거용 건축물을 대상으로 하는 국외의 경우 에너지 소비에 초점이 맞춰져 있지만, 본 연구의 경우 중층화를 대비하여 구조적 성능도 고려하여 아연도금강판(SGC58)과 FRP를 에폭시로 부착하여 150SL 형태의 복합스터드를 개발하였다. 복합스터드의 소재로는 두께 1.0mm과 1.2mm 강판과 두께 4mm(4ply), 6mm(6ply)의 FRP를 적용하였고, 4가지의 접합 상세에 대한 제작 및 실험을 통해 최종적으로 우수한 결과를 보인 2가지를 선택하였다. 이와 같은 과정을 거쳐 개발된 복합스터드의 압축 성능을 확인하기 위해 2가지 접합 상세에 대해 단면 높이인 150mm에 대해 3, 6, 9, 12배 길이에 대해 압축 실험을 계획하였고, 기존 스틸 스터드와 비교하기 위하여 동일 형태의 비교 실험체도 제작하였다. 실험결과, 복합스터드의 최대하중은 강판 두께 1.0mm인 경우 동일 두께의 스틸 스터드보다 평균 1.62배, 1.2mm인 경우 평균 1.46배 증가하였으며, 가력 종료 시점에 이르기까지 일체 거동을 보여 구조적으로 우수함이 입증되었다.

새로운 와이어 직조 다공질 금속의 압축 특성 (Compressive Characteristics of New Wire-woven Cellular Metal)

  • 고경득;이기원;강기주
    • 대한기계학회논문집A
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    • 제34권11호
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    • pp.1659-1666
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    • 2010
  • WBD(wire-woven bulk diamond)라고 명명한 와이어로 직조된 다공질 금속의 새로운 형태를 소개한다. WBD 는 기계적 열 특성과 공학적 응용면에서 몇 년 전에 소개되어진 WBK(wire-woven bulk Kaogme)와 같이 나선형 와이어로 구성된다. WBK 에서는 각 교차점에서 3 개의 와이어가 접하나 WBD 에서는 4 개의 와이어가 서로 접하여 배열된다. 압축하중 하에서 WBD 의 기계적 거동을 조사하고 그 결과를 WBK 와 비교하였다. 같은 세장비(d/c)에서 WBD 의 밀도 및 강도는 WBK 의 약 2 배이나, WBD 의 강성도는 WBK 보다 그만큼 높지 않다.

Experimental and numerical investigation of strengthened deficient steel SHS columns under axial compressive loads

  • Shahraki, Mehdi;Sohrabi, Mohammad Reza;Azizyan, Gholam Reza;Narmashiri, Kambiz
    • Structural Engineering and Mechanics
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    • 제67권2호
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    • pp.207-217
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    • 2018
  • In past years, numerous problems have vexed engineers with regard to buckling, corrosion, bending, and overloading in damaged steel structures. This article sets out to investigate the possible effects of carbon fiber reinforced polymer (CFRP) and steel plates for retrofitting deficient steel square hollow section (SHS) columns. The effects of axial loading, stiffness, axial displacement, the position and shape of deficient region on the length of steel SHS columns, and slenderness ratio are examined through a detailed parametric study. A total of 14 specimens was tested for failure under axial compression in a laboratory and simulated using finite element (FE) analysis based on a numerical approach. The results indicate that the application of CFRP sheets and steel plates also caused a reduction in stress in the damaged region and prevented or retarded local deformation around the deficiency. The findings showed that a deficiency leads to reduced load-carrying capacity of steel SHS columns and the retrofitting method is responsible for the increase in the load-bearing capacity of the steel columns. Finally, this research showed that the CFRP performed better than steel plates in compensating the axial force caused by the cross-section reduction due to the problems associated with the use of steel plates, such as in welding, increased weight, thermal stress around the welding location, and the possibility of creating another deficiency by welding.

A novel prediction model for post-fire elastic modulus of circular recycled aggregate concrete-filled steel tubular stub columns

  • Memarzadeh, Armin;Shahmansouri, Amir Ali;Poologanathan, Keerthan
    • Steel and Composite Structures
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    • 제44권3호
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    • pp.309-324
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    • 2022
  • The post-fire elastic stiffness and performance of concrete-filled steel tube (CFST) columns containing recycled aggregate concrete (RAC) has rarely been addressed, particularly in terms of material properties. This study was conducted with the aim of assessing the modulus of elasticity of recycled aggregate concrete-filled steel tube (RACFST) stub columns following thermal loading. The test data were employed to model and assess the elastic modulus of circular RACFST stub columns subjected to axial loading after exposure to elevated temperatures. The length/diameter ratio of the specimens was less than three to prevent the sensitivity of overall buckling for the stub columns. The gene expression programming (GEP) method was employed for the model development. The GEP model was derived based on a comprehensive experimental database of heated and non-heated RACFST stub columns that have been properly gathered from the open literature. In this study, by using specifications of 149 specimens, the variables were the steel section ratio, applied temperature, yielding strength of steel, compressive strength of plain concrete, and elastic modulus of steel tube and concrete core (RAC). Moreover, parametric and sensitivity analyses were also performed to determine the contribution of different effective parameters to the post-fire elastic modulus. Additionally, comparisons and verification of the effectiveness of the proposed model were made between the values obtained from the GEP model and the formulas proposed by different researchers. Through the analyses and comparisons of the developed model against formulas available in the literature, the acceptable accuracy of the model for predicting the post-fire modulus of elasticity of circular RACFST stub columns was seen.