• 제목/요약/키워드: Axial Compression Load

검색결과 391건 처리시간 0.02초

Seismic tests of RC shear walls confined with high-strength rectangular spiral reinforcement

  • Zhao, Huajing;Li, Qingning;Song, Can;Jiang, Haotian;Zhao, Jun
    • Steel and Composite Structures
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    • 제24권1호
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    • pp.1-13
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    • 2017
  • In order to improve the deformation capacity of the high-strength concrete shear wall, five high-strength concrete shear wall specimens confined with high-strength rectangular spiral reinforcement (HRSR) possessing different parameters, were designed in this paper. One specimen was only adopted high-strength rectangular spiral hoops in embedded columns, the rest of the four specimens were used high-strength rectangular spiral hoops in embedded columns, and high-strength spiral horizontal distribution reinforcement were used in the wall body. Pseudo-static test were carried out on high-strength concrete shear wall specimens confined with HRSR, to study the influence of the factors of longitudinal reinforcement ratio, hoop reinforcement form and the spiral stirrups outer the wall on the failure modes, failure mechanism, ductility, hysteresis characteristics, stiffness degradation and energy dissipation capacity of the shear wall. Results showed that using HRSR as hoops and transverse reinforcements could restrain concrete, slow load carrying capacity degeneration, improve the load carrying capacity and ductility of shear walls; under the vertical force, seismic performance of the RC shear wall with high axial compression ratio can be significantly improved through plastic hinge area or the whole body of the shear wall equipped with outer HRSR.

Strength and buckling of a sandwich beam with thin binding layers between faces and a metal foam core

  • Magnucki, Krzysztof;Jasion, Pawel;Szyc, Waclaw;Smyczynski, Mikolaj Jan
    • Steel and Composite Structures
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    • 제16권3호
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    • pp.325-337
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    • 2014
  • The strength and buckling problem of a five layer sandwich beam under axial compression or bending is presented. Two faces of the beam are thin aluminium sheets and the core is made of aluminium foam. Between the faces and the core there are two thin binding glue layers. In the paper a mathematical model of the field of displacements, which includes a share effect and a bending moment, is presented. The system of partial differential equations of equilibrium for the five layer sandwich beam is derived on the basis of the principle of stationary total potential energy. The equations are analytically solved and the critical load is obtained. For comparison reasons a finite element model of the beam is formulated. For the case of bended beam the static analysis has been performed to obtain the stress distribution across the height of the beam. For the axially compressed beam the buckling analysis was carried out to determine the buckling load and buckling shape. Moreover, experimental investigations are carried out for two beams. The comparison of the results obtained in the analytical and numerical (FEM) analysis is shown in graphs and figures. The main aim of the paper is to present an analytical model of the five layer beam and to compare the results of the theoretical, numerical and experimental analyses.

사각 튜브 부재의 압괴강도에 대한 동적 영향 평가 (Dynamic Effects for Crushing Strength of Rectangular Tubular Members)

  • 양박달치
    • 대한조선학회지
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    • 제27권1호
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    • pp.17-23
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    • 1990
  • 세장비가 작은 구조부재는 충돌과 같은 상황하에서 압축을 받는 경우, 축방향으로 접혀지는 소성 변형에 의해서 충돌에너지의 대부분을 흡수한다. 이 경우, 관성을 무시한다 하더라도 연강 부재의 정적인 하중에 대한 압괴강도에 비해서 변형률에 의한 영향으로 인해 동적 압괴 강도가 높아진다는 것은 잘 알려진 사실이다. 본 논문에서는 부재의 정적 하중에 대한 압괴강도 추정법을 소성변형의 운동학적 방법을 이용하여 수행하였다. 종래의 항복하중에 변형률을 고려한 동적 압괴 하중 추정치가 동적 영향을 과대평가하게 되므로 평균 소성변형 응력의 변형률에 대한 영향을 고려하여 튜브부재의 동적 압괴 강도 추정을 유도하였고, 이를 발표된 실험결과와 비교 검토하였다. 본 연구에서 얻은 만족스러운 결과를 토대로 하여 앞으로 이 방법을 선박의 충돌시 선수구조의 충돌에너지 흡수의 추정에 적용시킬 것이다.

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Cyclic behavior of FRP - crumb rubber concrete - steel double skin tubular columns and beams

  • Li, Danda;Hassanli, Reza;Su, Yue;Zhuge, Yan;Ma, Xing
    • Steel and Composite Structures
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    • 제41권5호
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    • pp.649-661
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    • 2021
  • This paper presents experimental and analytical studies to understand the behavior of crumb rubber concrete (CRC)-filled fiber reinforced polymer (FRP) and steel tube double skin column (DSC) and beam (DSB) members under cyclic loading. The main test variable was the percentage of rubber which ranged from 0 to 40%. For column members, different heights corresponding to different aspect ratios were examined to understand the to understand the effect of DSCs' slenderness on the cyclic response of the columns. the. The behavior of the specimens in terms of failure mode, strain development, energy dissipation, load-displacement response were presented and compared. The ability of the current provisions of the Australian codes to predict the capacity of such double skin members was also evaluated based on the test results. This study concluded that the reduction in the concrete strength was more severe at the material level compared to structural level. Also, as the load changed from axial compression in columns to pure moment in beams the negative effect of rubber percentage on the strength became less significant.

Seismic behavior of thin-walled CFST pier-to-base connections with tube confined RC encasement

  • Xuanding Wang;Yue Liao;Jiepeng Liu;Ligui Yang;Xuhong Zhou
    • Steel and Composite Structures
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    • 제50권2호
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    • pp.217-235
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    • 2024
  • Concrete-filled steel tubes (CFSTs) nowadays are widely used as the main parts of momentous structures, and its connection has gained increasing attention as the complexity in configuration and load transfer mechanism. This paper proposes a novel CFST pier-to-footing incorporating tube-confined RC encasement. Such an innovative approach offers several benefits, including expedited on-site assembly, effective confinement, and collision resistance and corrosion resistance. The seismic behavior of such CFST pier-to-footing connection was studied by testing eight specimens under quasi-static cyclic lateral load. In the experimental research, the influences on the seismic behavior and the order of plastic hinge formation were discussed in detail by changing the footing height, axial compression ratio, number and length of anchored bars, and type of confining tube. All the specimens showed sufficient ductility and energy dissipation, without significant strength degradation. There is no obvious failure in the confined footing, while local buckling can be found in the critical section of the pier. It suggests that the footing provides satisfactory strength protection for the connection.

보강판의 해석모델에 따른 좌굴 및 소성거동 평가 (Estimation of Buckling and Plastic Behaviour according to the Analysis Model of the Stiffened Plate)

  • 고재용;오영철;박주신
    • 한국항해항만학회지
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    • 제31권3호
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    • pp.271-279
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    • 2007
  • 선체구조는 기본적으로 판부재의 조합으로 이루어져 있으며, 이러한 판부재의 하중분담 능력 혹은 최종강도 평가는 선체구조의 합리적인 설계 및 구조의 안정성 평가에 있어서는 아주 중요하다. 또한, 선체구조를 구성하고 있는 구조요소들은 작용외력에 대하여 개별적으로 작용하지 않으며 전체적으로 연속거동을 하게 된다. 실제 선박에서의 붕괴형태 중 한가지는 종방향 굽휨에 의해서 갑판 혹은 선저부에 좌굴 및 소성붕괴이다. 그래서, 합리적인 설계에서는 이러한 급작스런 붕괴형태를 방지하기 위하여 좌굴 및 소성붕괴 거동을 파악하는 것이 아주 중요하며, 실제 선박에서는 갑판부와 선저부에서는 하중분담 능력을 증가시키기 위하여 여러개의 종보강재를 가진 보강판 구조의 설계를 하게 된다. 본 연구에서는 선체 판넬구조의 모델링 방법에 따른 최종강도 거동의 차이를 분석하여, 합리적인 모델링영역을 규명하고자 한다. 사용된 해석 모델은 실제 상선의 이중저구조에서 사용되는 판넬에서 채택하였으며 유한요소해석 모델링 시 3가지 단면형상에 대해 각각 6가지 서로 다른 해석모델을 적용하였으며, 이때 보강재의 단면형상을 변화하였다. 본 연구의 목적은 압축하중이 작용하는 선체 보강판구조에서 해석영역에 대한 좌굴 및 최종강도 거동의 특성을 분석하였다.

Comparative behaviour of stiffened and unstiffened welded tubular joints of offshore platforms

  • Thandavamoorthy, T.S.
    • Steel and Composite Structures
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    • 제3권5호
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    • pp.321-331
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    • 2003
  • The paper presents the results of an experimental investigation conducted on welded tubular joints, that are employed in offshore platforms, to study the behaviour and strength of these joints under axial brace compression loading. The geometrical configuration of the joints tested were T and Y. The nominal diameter of the chord and brace members of the joint were 324 and 219 mm respectively. The chord thickness was 12 mm and the brace 8 mm. The tested joints are approximately quarter size when compared to the largest joints in the platforms built in a shallow water depth of 80 m in the Bombay High field. Some of the joints were actually fabricated by a leading offshore agency which firm is directly involved in the fabrication of prototype structures. Strength of the internally ring-stiffened joints was found to be almost twice that of the unstiffened joints of the same configuration and dimensions. Bending of the chord as a whole was observed to be the predominant mode of deformation of the internally ring-stiffened joints in contrast to ovaling and punching shear of the unstiffened joints. It was observed in this investigation that unstiffened joint was stiffer in ovaling mode than in bending and that midspan deflection of unstiffened joint was insignificant when compared to that of the internally ring stiffened joint. The measured midspan deflection of the unstiffened joint in this investigation and its relation with the applied axial load compares very well with that predicted for the brace axial displacement by energy method published in the literature. A comparison of the measured deflection and ovaling of the unstiffened joint was made with that published by the author elsewhere in which numerical prediction of both quantities have been made using ANSYS software package. The agreement was found to be quite good.

Elevated temperature resistance of concrete columns with axial loading

  • Alaskar, Abdulaziz;Alyousef, Rayed;Alabduljabbar, Hisham;Alrshoudi, Fahed;Mohamed, Abdeliazim Mustafa;Jermsittiparsert, Kittisak;Ho, Lanh Si
    • Advances in concrete construction
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    • 제9권4호
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    • pp.355-365
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    • 2020
  • The influence of temperature on the material of concrete filled columns (CFCs) under axial loading has been quantitatively studied in this research. CFCs have many various advantages and disadvantages. One of the important inefficiency of classic CFCs design is the practical lack of hooped compression under the operational loads because of the fewer variables of Poisson's rate of concrete compared to steel. This is the reason why the holder tends to break away from the concrete core in elastic stage. It is also suggested to produce concrete filled steel tube columns with an initial compressed concrete core to surpass their design. Elevated temperatures have essentially reduced the strengths of steel tubes and the final capacity of CFCs exposed to fire. Thus, the computation of bearing capacity of concrete filled steel tube columns is studied here. Sometimes, the structures of concrete could be exposed to the high temperatures during altered times, accordingly, outcomes have shown a decrement in compressive-strength, then an increase with the reduction of this content. In addition, the moisture content at the minimal strength is declined with temperature rising. According to Finite Element (FE), the column performance assessment is carried out according to the axial load carrying capacities and the improvement of ductility and strength because of limitations. Self-stress could significantly develop the ultimate stiffness and capacity of concrete columns. In addition, the design equations for the ultimate capacity of concrete columns have been offered and the predictions satisfactorily agree with the numerical results. The proposed based model (FE model of PEC column) 65% aligns with the concrete exposed to high temperature. Therefore, computed solutions have represented a better perception of structural and thermal responses of CFC in fire.

Investigations of different steel layouts on the seismic behavior of transition steel-concrete composite connections

  • Qi, Liangjie;Xue, Jianyang;Zhai, Lei
    • Advances in concrete construction
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    • 제8권3호
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    • pp.173-185
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    • 2019
  • This article presents a comparative study of the effect of steel layouts on the seismic behavior of transition steel-concrete composite connections, both experimental and analytical investigations of concrete filled steel tube-reinforced concrete (CFST-RC) and steel reinforecd concrete-reinforced concrete (SRC-RC) structures were conducted. The steel-concrete composite connections were subjected to combined constant axial load and lateral cyclic displacements. Tests were carried out on four full-scale connections extracted from a real project engineering with different levels of axial force. The effect of steel layouts on the mechanical behavior of the transition connections was evaluated by failure modes, hysteretic behavior, backbone curves, displacement ductility, energy dissipation capacity and stiffness degradation. Test results showed that different steel layouts led to significantly different failure modes. For CFST-RC transition specimens, the circular cracks of the concrete at the RC column base was followed by steel yielding at the bottom of the CFST column. While uncoordinated deformation could be observed between SRC and RC columns in SRC-RC transition specimens, the crushing and peeling damage of unconfined concrete at the SRC column base was more serious. The existences of I-shape steel and steel tube avoided the pinching phenomenon on the hysteresis curve, which was different from the hysteresis curve of the general reinforced concrete column. The hysteresis loops were spindle-shaped, indicating excellent seismic performance for these transition composite connections. The average values of equivalent viscous damping coefficients of the four specimens are 0.123, 0.186 and 0.304 corresponding to the yielding point, peak point and ultimate point, respectively. Those values demonstrate that the transition steel-concrete composite connections have great energy dissipating capacity. Based on the experimental research, a high-fidelity ABAQUS model was established to further study the influence of concrete strength, steel grade and longitudinal reinforcement ratio on the mechanical behavior of transition composite connections.

가새좌굴을 고려한 X형 내진 가새골조의 기둥축력 산정법 (Prediction of Column Axial Force in X-braced Seismic Steel Frames Considering Brace Buckling)

  • 윤원순;이철호;김정재
    • 한국강구조학회 논문집
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    • 제26권6호
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    • pp.523-535
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    • 2014
  • 현 내진기준의 근간인 역량설계법(capacity design)에 의할 때, 중심가새골조의 내진설계는 기둥 및 보부재는 탄성부재로, 가새부재는 반복적인 인장과 압축을 통해 지진에너지를 소산하는 비탄성 부재로 설계되어야 한다. 가새부재는 에너지를 소산하는 과정에서 기둥부재에 추가적인 축력을 유입시키므로, 이 추가 축력을 고려하여 기둥부재를 탄성설계해야 한다. 현행 기준은 중심가새골조의 기둥부재 설계시 전층의 가새가 동시에 인장항복 및 좌굴하는 가장 보수적인 상황을 가정하여 기둥의 축력을 산정하거나 특별지진하중에 대해 기둥을 설계하는 방법을 제안하고 있다. 그러나 전층의 가새가 동시에 좌굴할 가능성은 희박하며, 특별지진하중에는 시스템 초과강도라는 경험적이고 우회적인 요소가 도입되었다는 한계가 있다. 이와 같은 문제점을 극복하기 위한 몇몇 선행 관련 연구들 역시 가새의 좌굴을 명시적으로 고려하지 못하였을 뿐더러 역학적 근거도 희박하다. 최근에 행해진 연구 중에서 역 V형 중심 가새골조를 대상으로, 기존의 기둥축력 산정법이 가지는 한계를 극복할 수 있는 새로운 기둥축력 산정법이 제안된 바가 있다. 하지만 역 V형 중심 가새골조와 X형 중심 가새골조의 하중전달 메커니즘은 상이하기 때문에 이 축력산정법을 X형 가새골조에 그대로 적용할 수는 없다. 따라서 본 연구에서는 X형 중심가새골조만의 역학적 특성을 고려한 네 가지의 기둥축력 산정법을 제안하였다. 특히 모달질량을 가중치로 고려하여 고차모드의 영향을 반영할 수 있는 새로운 방안을 제시하였다. 방대한 지진데이터를 입력으로 한 비선형 동적해석을 수행하여 제시된 방안의 타당성을 평가하였다.