• Title/Summary/Keyword: Axial force of member

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휨핀칭과 에너지 소산능력 (Flexural Pinching and Energy Dissipation Capacity)

  • 박흥근;엄태성
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2003년도 춘계 학술발표회논문집
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    • pp.275-285
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    • 2003
  • Pinching is an important property of reinforced concrete member which characterizes its cyclic behavior. In the present study, numerical studies were performed to investigate the characteristics and mechanisms of pinching behavior and the energy dissipation capacity of flexure-dominated reinforced concrete members. By analyzing existing experimental studies and numerical results, it was found that energy dissipation capacity of a member is directly related to energy dissipated by re-bars rather than concrete that is a brittle material, and that it is not related to magnitude of axial compressive force applied to the member. Therefore, for a member with specific arrangement and amount of re-bars, the energy dissipation capacity remains uniform regardless of the flexural strength that is changed by the magnitude of axial force applied. Due to the uniformness of energy dissipation capacity pinching appears in axial compression member. The flexural pinching that is not related to shear force becomes conspicuous as the flexural strength increases relatively to the uniform energy dissipation capacity. Based on the findings, a practical method for estimating energy dissipation capacity and damping modification factor was developed and verified with existing experiments.

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축력이 철근콘크리트 휨부재의 거동과 평균 균열간격에 미치는 영향 (The Effect of Axial Force on the Behavior and Average Crack Spacing of Reinforced Concrete Flexural Member)

  • 양은익;김진근;이성태;임전사랑
    • 콘크리트학회지
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    • 제9권4호
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    • pp.207-214
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    • 1997
  • 본 연구는변형구속에 의해 생기는 축력이 철근콘크리트 휨부재의 역학적 거동과 평균 균열간격에 미치는 영향을 검토하기 위해 수행되었다. 이를 위하여 변형구속 및 무구속 조건하에서의 휨강도와 휨강성을 실험으로 구하였으며, 또한 축방향 구속을 받는 휨부재의 평균 균열간격을 예측하는 식을 제안하였다.

철근콘크리트 기둥의 축방향 변형률 평가 (Evaluation of Axial Strains of Reinforced Concrete Columns)

  • 이정윤;김민옥;김형범
    • 콘크리트학회논문집
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    • 제25권1호
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    • pp.19-28
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    • 2013
  • 소성힌지 구역의 축방향변형률의 예측은 지진하중을 받는 철근콘크리트 기둥의 합리적인 연성 평가를 위하여 필요한 항목이다. 축방향변형률은 콘크리트의 유효압축강도를 저하시키고 층간 변위를 크게 할 수 있다. 기존 연구는 주로 소성힌지가 발생하는 보의 축방향변형률 예측에 국한되었지만 횡력을 받는 구조물에서는 저층부 기둥도 소성힌지가 발생한다. 이 논문에서는 기둥 부재에 작용하는 축력의 크기에 따라 변화하는 축방향변형률을 예측할 수 있는 모델과 평가식이 제안되었다. 단면 해석법을 이용하여 하중이력에 따른 축방향변형률의 변화와 철근의 변형률 변화를 고찰한 후, 해석과 실험 결과를 근거로 축방향변형률 예측 모델을 제안하였다. 제안된 모델은 부재 축방향변형률을 3가지 경로(재하, 재하 후 반대하중이 하중이 가해지는 구간, 동일한 부재 회전각에서 반복하중을 받을 구간)로 구분하였다. 이 연구에서 제안된 기둥 부재의 축방향변형률의 계산식은 축력비가 다른 철근콘크리트 기둥의 실제 축방향변형률을 추적하였고, 축력비의 영향을 반영하였다.

가새재 및 부재 연결 조건을 고려한 3차원 가설 동바리 구조물의 신뢰성 해석 (Reliability Analysis of Three-Dimensional Temporary Shoring Structures Considering Bracing Member and Member Connection Condition)

  • 류선호;옥승용;김승민
    • 한국안전학회지
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    • 제34권1호
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    • pp.53-61
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    • 2019
  • This study performs reliability analysis of three-dimensional temporary shoring structures with three different models. The first model represents a field model which does not have diagonal bracing members. The installation of bracing members is often neglected in the field for convenience. The second model corresponds to a design model which has the bracing members with the hinge connection of horizontal and bracing members at joints. The third model is similar to the second model but the hinge connection is replaced with partial rotational stiffness. The reliability analysis results revealed that the vertical members of the three models are safe enough in terms of axial force, but the vertical and horizontal members exhibit a big difference among the three models in terms of combination stress of axial force and bi-axial bending moments. The field model showed significant increase in failure probability for the horizontal member, and thus the results demonstrate that the bracing member should be installed necessarily for the safety of the temporary shoring structures.

Structural coupling mechanism of high strength steel and mild steel under multiaxial cyclic loading

  • Javidan, Fatemeh;Heidarpour, Amin;Zhao, Xiao-Ling;Al-Mahaidi, Riadh
    • Steel and Composite Structures
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    • 제27권2호
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    • pp.229-242
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    • 2018
  • High strength steel is widely used in industrial applications to improve the load-bearing capacity and reduce the overall weight and cost. To take advantage of the benefits of this type of steel in construction, an innovative hybrid fabricated member consisting of high strength steel tubes welded to mild steel plates has recently been developed. Component-scale uniaxial and multiaxial cyclic experiments have been conducted with simultaneous constant or varying axial compression loads using a multi-axial substructure testing facility. The structural interaction of high strength steel tubes with mild steel plates is investigated in terms of member capacity, strength and stiffness deterioration and the development of plastic hinges. The deterioration parameters of hybrid specimens are calibrated and compared against those of conventional steel specimens. Effect of varying axial force and loading direction on the hysteretic deterioration model, failure modes and axial shortening is also studied. Plate and tube elements in hybrid members interact such that the high strength steel is kept within its ultimate strain range to prevent sudden fracture due to its low ultimate to yield strain ratio while the ductile performance of plate governs the global failure mechanism. High strength material also significantly reduces the axial shortening in columns which prevents undesirable frame deformations.

반복하중에 대한 웨브전이형 다이아그리드 노드의 구조적 특성 (Resistance of Web-Separated Diagrid Nodes Subjected to Cyclic Loading)

  • 김영주;정인용;주영규;김상대
    • 한국강구조학회 논문집
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    • 제21권3호
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    • pp.257-266
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    • 2009
  • 다이아그리드 노드의 지진 및 바람에 의한 반복하중에 대한 구조성능을 해석적으로 평가하는 것은 용접특성의 반영이 어려워서 한계가 있다. 이 연구에서는 횡하중을 받는 다이아그리드 노드의 구조거동을 알아보기 위해 다이아그리드의 노드부를 축소한 모형을 이용해 실험을 수행했다. 실험체는 총 5개이며 실험의 변수는 각 부분의 용접방법, 측면스티프너와 가새 웨브의 겹침길이이다. 한쪽 대각가새에는 인장력을, 다른쪽 대각가새에는 압축력을 가하는 반복가력 실험을 수행하였다. 실험 결과 주요 파괴 원인은 축력과, 방향이 상이한 두 힘의 합력으로 인한 부가적 모멘트에 의한 작용으로 나타났다. 인장력에 의해서 가새 부재의 플랜지가 파단하였고, 압축력에 의해서 가새 플랜지의 국부좌굴이 일어났다. 또한 겹침길이와 용접타입은 초기 강성, 항복 내력 및 에너지 흡수능력에 영향을 미치는 것으로 나타났다.

깊은 굴착시 버팀대 선행하중과 흙막이 구조물과의 상호 관계 (Correlation between Strut Preloading and Earth Retaining Structures in Deep Excavations)

  • 양구승;오성남
    • 한국지반공학회논문집
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    • 제16권2호
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    • pp.23-30
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    • 2000
  • The use of strut-preloading method is gradually increasing in braced excavations in Korea. And it is necessary to analyze the effects of strut preloading on the wall deflection, wall bending moment and strut axial force, etc. In this study, by using the analysis method of beams on elasto-plastic foundations, measured data and calculated results of 2 sites are compared and parametric studies of correlation between preloading and earth retaining structures in sandy soils are carried out in strut preloading application. As results, about 50%~75% of design strut load is effective as preloading force in considering the displacement and member forces of earth retaining structures. And the effective stiffiness of strut should be at least 25% of th ideal value in order to restrain the excessive increase of wall deflection and bending moments. As one of some methods to prevent excessive movements in braced excavation, to preload the strut is confirmed as more effective way than to increase the stiffiness of strut in braced wall, if the excessive axial force of strut due to preloading can be avoided.

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버팀굴착시 버팀대 선행하중과 흙막이 구조물과의 상호 관계 (Correlation between Strut Preloading and Earth Retaining Structures in Braced Excavations)

  • 오성남;조현태;박기태;양구승
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 1999년도 봄 학술발표회 논문집
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    • pp.129-136
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    • 1999
  • The use of strut preloading method is gradually increasing in braced excavations in Korea. And it is necessary to analyse the effects of strut preloading on the wall deflection, bending moment and strut axial force etc. In this study, by using the analysis method of beams on elasto-plastic foundations, parametric studies of correlation between preloading and earth retaining structures in sandy soils were peformed in strut preloading application. As results, about 50% of design strut load was effective as a preloading force in considering the displacement and member forces of structures. And at least the effective stiffness of strut should be over 25% of the ideal value in order to restrain the excessive increase of wall deflection and bending moments. In order to protect excessive movements in braced excavation, to preload the strut was rather effective way than to increase the stiffness of strut and braced wall, but the excessive axial force of strut should be checked simultaneously.

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콘크리트 합성 유리섬유 복합소재 압축부재의 거동특성 (Structural Characteristics of Concrete Filled GFRP Composite Compression Member)

  • 이성우;최석환;손기훈;김성태
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2001년도 봄 학술발표회 논문집
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    • pp.181-188
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    • 2001
  • Due to many advantage of advanced composite material, research on the composite compression member is initiated. In this paper structural characteristics of concrete filled glass fiber reinforced composite tubular member is studied. Through 4-point flexural test with various level of axial force, the performance of composite compression member was analyzed. Also numerical method to find P-M diagram of composite compression member was developed. It is demonstrated that result of numerical method agree well with experimental results.

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Software for biaxial cyclic analysis of reinforced concrete columns

  • Shirmohammadi, Fatemeh;Esmaeily, Asad
    • Computers and Concrete
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    • 제17권3호
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    • pp.353-386
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    • 2016
  • Realistic assessment of the performance of reinforced concrete structural members like columns is needed for designing new structures or maintenance of the existing structural members. This assessment requires analytical capability of employing proper material models and cyclic rules and considering various load and displacement patterns. A computer application was developed to analyze the non-linear, cyclic flexural performance of reinforced concrete structural members under various types of loading paths including non-sequential variations in axial load and bi-axial cyclic load or displacement. Different monotonic material models as well as hysteresis rules, were implemented in a fiber-based moment-curvature and in turn force-deflection analysis, using proper assumptions on curvature distribution along the member, as in plastic-hinge models. Performance of the program was verified against analytical results by others, and accuracy of the analytical process and the implemented models were evaluated in comparison to the experimental results. The computer application can be used to predict the response of a member with an arbitrary cross section and various type of lateral and longitudinal reinforcement under different combinations of loading patterns in axial and bi-axial directions. On the other hand, the application can be used to examine analytical models and methods using proper experimental data.