• 제목/요약/키워드: high strength concrete beam

검색결과 470건 처리시간 0.026초

고강도 철근 및 고강도 콘크리트를 사용한 보-기둥 접합의 비선형 거동 (Inelastic Behavior of High Strength Reinforced Concrete Beam-Column Joint)

  • 이정한;조중현;유영찬;이원호;정헌수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 봄 학술발표회 논문집(I)
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    • pp.547-552
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    • 1999
  • The purpose of this study is to make a contribution to the construction of 40∼60 story R/C high rise building by developing the reinforcing details which can improve the seismic performance of high-strength (f'c=700㎏/㎠, fy=4000, 8000㎏/㎠) R/C beam-column joints. The reinforcing details which can make beam plastic hinging zones moved and spreaded from the column face is proposed to insure the ductile behavior of high-strength RC beam-column joints. The intermediate reinforcement which is vertically anchored by interlinking each intermediate reinforcements is proposed and tested to examine the mechanical performance of proposed details. Main variables are the shape of the intermediate reinforcements and yield strength of rebars. From the test results, the newly proposed intermediate reinforcement details can move and spread the beam plastic hinging zone about 1.0d from the column face.

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Experimental and analytical investigation of composite columns made of high strength steel and high strength concrete

  • Lai, Binglin;Liew, J.Y. Richard;Xiong, Mingxiang
    • Steel and Composite Structures
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    • 제33권1호
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    • pp.67-79
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    • 2019
  • Composite columns made of high strength materials have been used in high-rise construction owing to its excellent structural performance resulting in smaller cross-sectional sizes. However, due to the limited understanding of its structural response, current design codes do not allow the use of high strength materials beyond a certain strength limit. This paper reports additional test data, analytical and numerical studies leading to a new design method to predict the ultimate resistance of composite columns made of high strength steel and high strength concrete. Based on previous study on high strength concrete filled steel tubular members and ongoing work on high strength concrete encased steel columns, this paper provides new findings and presents the feasibility of using high strength steel and high strength concrete for general double symmetric composite columns. A nonlinear finite element model has been developed to capture the composite beam-column behavior. The Eurocode 4 approach of designing composite columns is examined by comparing the test data with results obtained from code's predictions and finite element analysis, from which the validities of the concrete confinement effect and plastic design method are discussed. Eurocode 4 method is found to overestimate the resistance of concrete encased composite columns when ultra-high strength steel is used. Finally, a strain compatibility method is proposed as a modification of existing Eurocode 4 method to give reasonable prediction of the ultimate strength of concrete encased beam-columns with steel strength up to 900 MPa and concrete strength up to 100 MPa.

SFRHPC interior beam-column-slab joints under reverse cyclic loading

  • Ganesan, N.;Nidhi, M.;Indira, P.V.
    • Advances in concrete construction
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    • 제3권3호
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    • pp.237-250
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    • 2015
  • Beam-column joints are highly vulnerable locations which are to be designed for high ductility in order to take care of unexpected lateral forces such as wind and earthquake. Previous investigations reveal that the addition of steel fibres to concrete improves its ductility significantly. Also, due to presence of slab the strength and ductility of the beam increases considerably and ignoring the effect of slab can lead to underestimation of beam capacity and defiance of strong column weak beam concept. The influence of addition of steel fibres on the strength and behaviour of steel fibre reinforced high performance concrete (SFRHPC) interior beam-column-slab joints was investigated experimentally. The specimens were subjected to reverse cyclic loading. The variable considered was the volume fraction of crimped steel fibres i.e., 0%, 0.5% and 1.0%. The results show that the addition of steel fibres improves the first crack load, strength, ductility, energy absorption capacity and initial stiffness of the beam.

일반강도 및 고강도 재료를 사용한 보-기둥 접합부의 지진응답 (Seismic Response of Exterior Beam-Column Subassemblies Using Normal and High-Strength Materials)

  • 장극관;서대원
    • 한국지진공학회논문집
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    • 제3권4호
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    • pp.83-94
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    • 1999
  • 고강도 콘크리트는 부재의 내력증가 뿐만아니라 내구성을 증대시키기 때문에 널리 사용되고 있다 그러나 고강도 철근콘크리트 보-기둥 접합부의 구조성능에 관한 연구자료는 충분하지 않은 실정이며 현행규준 또는 일반강도 콘크리트의 실험에 근거하고 있다 따라서 본 연구에서는 일반강도 $(f_c'=240kg/\textrm{cm}^2) 및 고강도(f_c'=700kg/\textrm{cm}^2)$ 콘크리트를 사용하여 실제의 중진지역 30층 실제구조물의 2/3크기를 축소한 보와 기둥 슬래브로 구성된 네 개의 부분구조체를 제작하여 유사정적실험을 통한 구조거동과 파괴형태를 조사하고 전단내력에 대한 현행규준과 비교 검토하였다.

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Finite element analysis of RC beam-column joints with high-strength materials

  • Noguchi, H.;Kashiwazaki, T.
    • Structural Engineering and Mechanics
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    • 제5권5호
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    • pp.625-634
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    • 1997
  • Reinforced concrete (RC) interior beam-column joints with high-strength materials: concrete compressive strength of 100 MPa and the yield strength of longitudinal bars of 685 MPa, were analyzed using three-dimensional (3-D) nonlinear finite element method (FEM). Specimen OKJ3 of joint shear failure type was a plane interior joint, and Specimen 12 of beam flexural failure type was a 3-D interior joint with transverse beams. Though the analytical initial stiffness was higher than experimental one, the analytical results gave a good agreement with the test results on the maximum story shear forces, the failure mode.

고강도 폴리머 콘크리트보의 등가직사각형 응력분포 (Distribution of the Equivalent Rectangular Stress Block for High-Strength Polymer Concrete Beams)

  • 김관호;연규석;김남길;조규우
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2001년도 봄 학술발표회 논문집
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    • pp.915-920
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    • 2001
  • This study was conducted to analysis the distribution of the rectangular stress block for high-strength polymer concrete beam. C-shaped specimens were produced and tested to compute parameters of the rectangular stress block. They were $\kappa_{1}$ = 0.73, $\kappa_{3}$ = 0.94 and $\gamma$= 0.845, respectively. Experimental value of flexural strength of beam was same to be compared with theoretical value. But there is desirable to need many experimental data in order to exact design of polymer concrete structure.

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Strain penetration of high-strength steel bars anchored in reinforced concrete beam-column connections

  • Li, Ling;Zheng, Wenzhong;Wang, Ying
    • Structural Engineering and Mechanics
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    • 제72권3호
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    • pp.367-382
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    • 2019
  • This paper presents experimental and analytical investigations on additional fixed-end rotations resulting from the strain penetration of high-strength reinforcement in reinforced concrete (RC) beam-column connections under monotonic loading. The experimental part included the test of 18 interior beam-column connections with straight long steel bars and 24 exterior beam-column connections with hooked and headed steel bars. Rebar strains along the anchorage length were recorded at the yielding and ultimate states. Furthermore, a numerical program was developed to study the effect of strain penetration in beam-column connections. The numerical results showed good agreement with the test results. Finally, 87 simulated specimens were designed with various parameters based on the test specimens. The effect of concrete compressive strength ($f_c$), yield strength ($f_y$), diameter ($d_b$), and anchorage length ($l_{ah}$) of the reinforcement in the beam-column connection was examined through a parametric study. The results indicated that additional fixed-end rotations increased with a decrease in $f_c$ and an increase in $f_y$, $d_b$ and $l_{ah}$. Moreover, the growth rate of additional fixed-end rotations at the yielding state was faster than that at the ultimate state when high-strength steel bars were used.

섬유보강 고인장강도 콘크리트를 이용한 이중 콘크리트 보의 휨 거동 해석 (Flexural Behavior of Dual Concrete Beams Using Fiber Reinforced Concrete at Tensile Parts)

  • 박대효;부준성;조백순
    • 콘크리트학회논문집
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    • 제13권6호
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    • pp.584-592
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    • 2001
  • 철근콘크리트보(reinforced concrete beam)는 콘크리트의 압축강도에 비해 낮은 인장강도로 인해 사용하중 단계에서 균열이 발생하게 된다. 발생된 균열에 의해 감소된 콘크리트의 휨강성은 전체적인 구조물의 강도와 강성을 감소시킨다. 인장강도 및 휨강도를 증가시킨 섬유보강 콘크리트(fiber reinforced concrete)를 인장영역에 이용함으로서 구조물의 강도와 강성을 증가시킬 수 있을 뿐만 아니라 균열 및 처짐이 감소되는 효과가 있으므로 구조물의 전체적인 안전성과 사용성을 확보할 수 있다. 본 연구에서는 보통강도 콘크리트(normal strength concrete)와 고인장강도 콘크리트(high tensile strength concrete)의 합성으로 이루어진 이중 콘크리트보(dual concrete beam)의 힘의 평형조건과 변형률 적합조건을 이용하여 탄성해석과 극한해석 모델을 제안한다. 세 가지 종류의 철근비에 대해 각각 하나의 철근콘크리트보와 두 개의 이중 콘크리트보를 시험하여 이중 콘크리트보의 구조적 강성을 검토하였다. 이중 콘크리트보는 철근콘크리트보에 비해 약 30%이상의 극한하중의 증가를 나타내었고, 휨강성의 증가와 더불어 처짐이 감소되었다.

VH분리타설 공법의 초고강도 콘크리트 적용성 평가 (Evaluation of Suitable Application of ultra high-strength Concrete to V.H Separated Placement)

  • 김학영;기전도;박현;임병춘;이영도;정상진
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2009년도 추계 학술논문 발표대회
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    • pp.23-26
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    • 2009
  • Despite vigorous studies on ultra high-strength concrete in Korea, it still faces many challenges in application to on-site construction methods. This study intends to evaluate the applicability of the VH separated-pouring method which is currently used and was designed to pour ultra high-strength concrete with a design strength of 60, 100N/㎟ separately to girder and beam. When it comes to VH separated-pouring, there is a difference in the required design strength between a girder and a beam, which tends to be larger for ultra high-strength concrete. The tensile strength and cold joint at the joint end have not been commonly evaluated and thus the inevitably of its use is dependent on a structural analysis of the structural stress of reinforcement. In the study, potential problems with respect to the building material which might occur during the pouring of ultra high-strength concrete was evaluated and issues on joint surface performance, the hydration energy contained in the members, and the effects of contraction in concrete were considered as the key elements for study.

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Performance of hybrid beam-column joint cast with high strength concrete

  • Al-Osta, M.A.;Al-Khatib, A.M.;Baluch, M.H.;Azad, A.K.;Rahman, M.K.
    • Earthquakes and Structures
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    • 제12권6호
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    • pp.603-617
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    • 2017
  • This paper presents investigation into the behavior of beam-column joints, with the joint region concrete being replaced by steel fiber reinforced concrete (SFRC) and by ultra-high performance concrete (UHPC). A total of ten beam-column joint specimens (BCJ) were tested experimentally to failure under monotonic and cyclic loading, with the beam section being subjected to flexural loading and the column to combined flexural and axial loading. The joint region essentially transferred shear and axial stresses as received from the column. Steel fiber reinforced concrete (SFRC) and ultra-high performance concrete (UHPC) were used as an innovative construction and/or strengthening scheme for some of the BCJ specimens. The reinforced concrete specimens were reinforced with longitudinal steel rebar, 18 mm, and some specimens were reinforced with an additional two ties in the joint region. The results showed that using SFRC and UHPC as a replacement concrete for the BCJ improved the joint shear strength and the load carrying capacity of the hybrid specimens. The mode of failure was also converted from a non-desirable joint shear failure to a preferred beam flexural failure. The effect of the ties in the SFRC and UHPC joint regions could not be observed due to the beam flexural failure. Several models were used in estimating the joint shear strength for different BCJ specimens. The results showed that the existing models yielded wide-ranging values. A new concept to take into account the influence of column axial load on the shear strength of beam-column joints is also presented, which demonstrates that the recommended values for concrete tensile strength for determination of joint shear strength need to be amended for joints subject to moderate to high axial loads. Furthermore, finite element model (FEM) simulation to predict the behaviour of the hybrid BCJ specimens was also carried out in an ABAQUS environment. The result of the FEM modelling showed good agreement with experimental results.