• 제목/요약/키워드: Reinforced Concrete-Filled Steel Tube

검색결과 95건 처리시간 0.031초

Analysis of axial compression performance of BFRRAC-filled square steel tubular column

  • Xianggang Zhang;Jixiang Niu;Wenlong Shen;Dapeng Deng;Yajun Huang
    • Steel and Composite Structures
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    • 제49권4호
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    • pp.457-471
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    • 2023
  • To make up for the performance weaknesses of recycled aggregate concrete (RAC), expand the application range of RAC, and alleviate the environmental problems caused by excessive exploitation of natural coarse aggregates (NCA), this study proposes a basalt fiber-reinforced recycled aggregate concrete (BFRRAC)-filled square steel tubular columns that combines two modification methods of steel tube and fiber, which may greatly enhance the mechanical properties of RAC. The axial compression performance for BFRRAC-filled square steel tubular columns was reported during this study. Seven specimens with different replacement ratios of recycled coarse aggregate (RCA), length-diameter ratios, along with basalt fiber (BF) contents were designed as well as fabricated for performing axial compression test. For each specimen, the whole failure process as well as mode of specimen were discovered, subsequently the load-axial displacement curve has obtained, after which the mechanical properties was explained. A finite element analysis model for specimens under axial compression was then established. Subsequently, based on this model, the factors affecting axial compression performance for BFRRAC-filled square steel tubes were extended and analyzed, after which the corresponding design suggestion was proposed. The results show that in the columns with length-diameter ratios of 5 and 8, bulging failure was presented, and the RAC was severely crushed at the bulging area of the specimen. The replacement ratio of RCA as well as BF content little affected specimen's peak load (less than 5%). As the content of BF enhanced from 0 kg/m3 to 4 kg/m3, the dissipation factor and ductility coefficients increased by 10.2% and 5.6%, respectively, with a wide range.

Numerical simulation on the cyclic behavior of ultra-high performance concrete filled steel tubular column

  • Heng Cai;Fangqian Deng
    • Structural Engineering and Mechanics
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    • 제85권5호
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    • pp.693-707
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    • 2023
  • In order to deeply reveal the working mechanism of ultra-high performance concrete (UHPC) filled steel tubular columns (UHPCFSTs) under cyclic loading, a three-dimension (3D) macro-mesoscale finite element (FE) model was established considering the randomness of steel fibers and the damage of UHPC. Model correctness and reliability were verified based on the experimental results. Next, the whole failure process of UHPC reinforced with steel fibers, passive confinement effect and internal force distribution laws were comprehensively analyzed and discussed. Finally, a simplified and practical method was proposed for predicting the ultimate bending strengths of UHPCFSTs. It was found that the non-uniform confinement effect of steel tube occurred when the drift ratio exceeded 0.5%, while the confining stress increased then decreased afterwards. There was preferable synergy between the steel tube and UHPC until failure. Compared with experimental results, the ultimate bending strengths of UHPCFSTs were undervalued by the current code provisions such as AISC360-10, EC4 and GB50936 with computed mean values (MVs) of 0.855, 0.880 and 0.836, respectively. The proposed practical method was highly accurate, as evidenced by a mean value of 1.058.

SRC 기둥에 대한 정적실험 (Static Tests on SRC Columns)

  • 정인근;민진;심창수;정영수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 추계 학술발표회 제16권2호
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    • pp.97-100
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    • 2004
  • Steel encased composite columns are widely used due to their excellent structural performance in terms of stiffness, strength, and ductility. However, experimental studies were usually for the columns having higher steel ratio $(3-4\%)$. There are two different design concepts for SRC columns. ACI-318 specifies the design strength of the column using the same concept of reinforced concrete columns. AISC-LRFD specifies the P-M diagram using the concept of steel column. In this paper, SRC columns have the steel ratio of $0.53\%\;and\;1.06\%$. From the test results, ACI-318 specifications showed better evaluation of SRC columns having low steel ratio. H beam and steel tube partially filled with concrete were embedded in concrete. Flexural tests showed considerably high ductility.

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탄소섬유쉬트로 보강된 각형 CFT기둥의 실험 및 설계식 (The Experiment and Design Formula of Rectangular CFT Columns Reinforced by Carbon Fiber Sheets)

  • 박재우;정성훈
    • 한국산학기술학회논문지
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    • 제11권10호
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    • pp.4024-4030
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    • 2010
  • 본 연구에서는 FRP 보강된 각형 CFT기둥의 중심축하중 실험과 이력거동실험을 수행하였다. 실험변수는 중심축하중 실험에서는 폭-두께비, FRP보강겹수이며, 이력실험에서는 콘크리트 강도와 FRP 보강겹수이다. 실험체의 내력과 연성능력을 정리하였고, FRP로 보강된 각형 CFT기둥의 압축내력 설계식을 제안한다.

탄소섬유쉬트로 보강된 콘크리트충전 원형강관기둥의 연성능력 (Ductility Capacity for Concrete Filled Steel Circular Tubes Reinforced by Carbon Fiber Sheets(CFSs))

  • 박재우;홍영균;최성모
    • 한국강구조학회 논문집
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    • 제22권2호
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    • pp.185-195
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    • 2010
  • 본 연구에서는 탄소섬유쉬트로 추가구속된 각형 CFT기둥 실험체의 단조압축실험을 수행하였고 이를 토대로 실험체의 연성능력을 평가하였다. 실험변수는 탄소섬유쉬트 보강겹수와 폭-두께비, 갭부착유무이며 실험변수에 따라 총 9개의 실험체를 제작하여 단조압축실험을 수행하였다. 실험을 통하여 각 실험체의 파괴거동, 하중-축변위 곡선, 최대내력, 변형성능을 비교한다. 탄소섬유쉬트의 추가구속은 기둥의 국부좌굴을 지연시켰으며 갭의 부착으로 탄소섬유쉬트의 구속분담시점을 지연시켜 연성능력은 상승한 것으로 나타났다.

The influence of strengthening the hollow steel tube and CFST beams using U-shaped CFRP wrapping scheme

  • Zand, Ahmed W. Al;Hosseinpour, Emad;Badaruzzaman, Wan Hamidon W.
    • Structural Engineering and Mechanics
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    • 제66권2호
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    • pp.229-235
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    • 2018
  • This study investigated the behaviour of the simply supported hollow steel tube (HST) beams, either concrete filled or unfilled when strengthened with carbon fibre reinforced polymer (CFRP) sheets. Eight specimens with varied tubes thickness (sections classification 1 and 3) were all tested experimentally under static flexural loading, four out of eight were filled with normal concrete (CFST beams). Particularly, the partial CFRP strengthening scheme was used, which wrapped the bottom-half of the beams cross-section (U-shaped wrapping), in order to use the efficiency of high tensile strength of CFRP sheets at the tension stress only of simply supported beams. In general, the results showed that the CFRP sheets significantly improved the ultimate strength and energy absorption capacities of the CFST beams with very limited improvement on the related HST beams. For example, the load and energy absorption capacities for the CFST beams (tube section class 1) were increased about 20% and 32.6%, respectively, when partially strengthened with two CFRP layers, and these improvements had increased more (62% and 38%) for the same CFST beams using tube class 3. However, these capacities recorded no much improvement on the related unfilled HST beams when the same CFRP strengthening scheme was adopted.

원형 내부 구속 중공 철근콘크리트 기둥의 내화 성능 (Fire Resistance of Circular Internally Confined Hollow Reinforced Concrete Column)

  • 원덕희;한택희;이규세;강영종
    • 한국강구조학회 논문집
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    • 제22권2호
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    • pp.139-150
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    • 2010
  • 기둥은 하중 상태에 따라서 축하중과 횡하중 등에 영향을 받는 주부재로서 많이 사용되어지고 있다. 일반적으로 철근 콘크리트(Reinforced Concrete Column, R.C. Column)이 가장 많이 설계 및 시공되고 있으며, 그 밖에도 콘크리트 충전 강관(.Concrete Filled Tube, CFT) 기둥과 같은 복합재료의 기둥이 최근 현장에 많이 적용되어 건설이 진행되고 있는 실정이다. 철근 콘크리트 기둥의 자중의 감소와 사용 재료의 절감을 위하여, 기존의 기둥에 중공부를 두는 중공 R.C 기둥이 사용되고 있다. 중공 RC의 경우 동일 단면적을 갖는 일반 R.C기둥에 비하여 큰 단면이차모멘트를 갖게 되므로 더 효율적인 단면 활용이 가능하다. 그러나 위와 같은 장점이 있는 것과는 반대로, 중공 R.C 기둥은 내측면의 취성파괴로 인하여 낮은 연성 거동을 할 가능성이 높다. 이러한 내측면의 취성 파괴는 기둥 외측면의 경우 횡철근에 의해 구속되어 있으나, 내측면의 콘크리트에는 구속력이 작용하지 않는다. 이러한 단점을 극복하기 위하여 중공면에 구속력을 작용시켜, 콘크리트를 3축 구속 상태로 만들어 주어야 한다. 이를 해결하기 위해서 중공 R.C. 기둥 중공부에 강관을 삽입함으로서 중공 기둥 내의 콘크리트를 3축 구속 상태로 만들어주는 내부 구속 중공 R.C 기둥(Internally Concfined Hollow Reinforced Concrete, ICH R.C)이 기존연구자에 의해서 제시되어졌다.(Kang & Han, 2005) 본 연구에서는 ICH RC 기둥의 열전달 해석 및 비선형 재료모델 프로그램을 이용하여 내화 성능을 분석하였으며, 중공비, 피복콘크리트의 두께, 내부강관의 두께를 변수로 선정하여 매개변수를 수행함으로서 내부 구속 중공 RC 기둥의 내화 성능을 증가 시켜주는 인자를 찾아내고 분석하였다.

합성형태에 따른 콘크리트 구속효과를 고려한 응력-변형률 관계식의 제안 (Proposal of Stress-Strain Relations Considering Confined Effects for Various Composite Columns)

  • 박국동;황원섭;윤희택;선우현
    • 대한토목학회논문집
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    • 제30권3A호
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    • pp.265-275
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    • 2010
  • 콘크리트 충전형 합성부재와 콘크리트 피복형 합성부재는 압축하중 상태에서 강재에 의한 콘크리트의 구속효과와 콘크리트에 의한 강재의 국부좌굴에 대한 보강효과를 기대할 수 있는 압축부재이다. 기존의 연구결과를 바탕으로 RC, CFT, CET 압축부재에 대한 응력-변형률 관계와 하중-변위 관계를 철근비와 강재비에 따라 해석하였다. 이후 도출된 해석결과를 실험결과와 비교한 후, 구속효과가 하중과 변위에 미치는 영향을 평가하여 기존의 응력-변형률 관계를 수정하였다. 또한 국외 각국의 설계기준의 설계강도와 비교하여 수정된 응력-변형률 관계 제안식을 검토하였다.

Seismic experiment and analysis of rectangular bottom strengthened steel-concrete composite columns

  • Hui, Cun;Zhu, Yanzhi;Cao, Wanlin;Wang, Yuanqing
    • Steel and Composite Structures
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    • 제20권3호
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    • pp.599-621
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    • 2016
  • In order to study the working mechanism of rectangular steel-concrete composite columns subjected to compression-bending load and further determine the seismic performance index, a bottom strengthened rectangular steel reinforced concrete (SRC) column with concealed steel plates and a bottom strengthened rectangular concrete filled steel tube (CFST) columns were proposed. Six column models with different configurations were tested under horizontal low cyclic loading. Based on the experiments, the load-bearing capacity, stiffness and degradation process, ductility, hysteretic energy dissipation capacity, and failure characteristics of the models were analyzed. The load-bearing capacity calculation formulas for a normal section and an oblique section of bottom strengthened rectangular steel-concrete composite columns were pesented and a finite element (FE) numerical simulation of the classical specimens was performed. The study shows that the load-bearing capacity, ductility, and seismic energy dissipation capacity of the bottom strengthened rectangular steel-concrete composite columns are significantly improved compared to the conventional rectangular steel-concrete composite columns and the results obtained from the calculation and the FE numerical simulation are in good agreement with those from the experiments. The rectangular steel-concrete composite column with bottom strengthened shows better seismic behavior and higher energy dissipation capacity under suitable constructional requirements and it can be applied to the structure design of high-rise buildings.

Behaviors of concrete filled square steel tubes confined by carbon fiber sheets (CFS) under compression and cyclic loads

  • Park, Jai Woo;Hong, Young Kyun;Choi, Sung Mo
    • Steel and Composite Structures
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    • 제10권2호
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    • pp.187-205
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    • 2010
  • The existing CFT columns present the deterioration in confining effect after the yield of steel tube, local buckling and the deterioration in load capacity. If lateral load such as earthquake load is applied to CFT columns, strong shearing force and moment are generated at the lower part of the columns and local buckling appears at the column. In this study, axial compression test and beam-column test were conducted for existing CFT square column specimens and those reinforced with carbon fiber sheets (CFS). The variables for axial compression test were width-thickness ratio and the number of CFS layers and those for beamcolumn test were concrete strength and the number of CFS layers. The results of the compression test showed that local buckling was delayed and maximum load capacity improved slightly as the number of layers increased. The specimens' ductility capacity improved due to the additional confinement by carbon fiber sheets which delayed local buckling. In the beam-column test, maximum load capacity improved slightly as the number of CFS layers increased. However, ductility capacity improved greatly as the increased number of CFS layers delayed the local buckling at the lower part of the columns. It was observed that the CFT structure reinforced with carbon fiber sheets controlled the local buckling at columns and thus improved seismic performance. Consequently, it was deduced that the confinement of CFT columns by carbon fiber sheets suggested in this study would be widely used for reinforcing CFT columns.