• 제목/요약/키워드: RC Beams

검색결과 920건 처리시간 0.027초

플랫 플레이트 시스템의 처짐에 대한 시공 중 과하중의 영향 평가를 위한 실용해석 기법의 적용 (Applications of Practical Analysis Scheme for Evaluating Effects of Over-Loads during Construction on Deflections of Flat Plate System)

  • 김재요
    • 한국전산구조공학회논문집
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    • 제22권1호
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    • pp.25-34
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    • 2009
  • 큰 휨 지지력을 제공하는 테두리 보가 없이 기둥과 바닥판만으로 구성된 플랫 플레이트 시스템은 응력 조건뿐만 아니라 사용성 조건에 의하여 구조적 성능이 결정될 수 있다. 시공 순서 및 그에 따른 동바리로 연결되어 있는 슬래브들 간의 시공 하중 분포에 대한 영향이 플랫 플레이트의 단기 및 장기 성능에 대한 중요한 영향 요소가 될 수 있다. 이 연구에서는 슬래브 처짐 산정을 위하여, 선형해석 프로그램을 이용하여 시공 순서 및 콘크리트 균열효과를 고려할 수 있는 실용해석 기법을 제시한다. 구조설계기준에서 제시하고 있는 1방향 휨부재의 처짐 산정을 위한 유효단면 2차 모멘트의 개념을 2방향 슬래브 시스템인 플랫 플레이트의 유한요소해석에 확장하여 적용한다. 플랫 플레이트 시스템의 처짐에 대한 시공 중 과하중의 영향을 분석하기 위하여, 간편법에 의하여 산정된 시공 하중의 지배조건들에 대하여 제안된 실용해석 기법을 적용한다.

Experimental study on shear capacity of SRC joints with different arrangement and sizes of cross-shaped steel in column

  • Wang, Qiuwei;Shi, Qingxuan;Tian, Hehe
    • Steel and Composite Structures
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    • 제21권2호
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    • pp.267-287
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    • 2016
  • The seismic performance of the ordinary steel reinforced concrete (SRC) columns has no significant improvement compared to the reinforced concrete (RC) columns mainly because I, H or core cross-shaped steel cannot provide sufficient confinement for core concrete. Two improved SRC columns by constructing with new-type shaped steel were put forward on this background, and they were named as enlarging cross-shaped steel and diagonal cross-shaped steel for short. The seismic behavior and carrying capacity of new-type SRC columns have been researched theoretically and experimentally, while the shear behavior remains unclear when the new-type columns are joined onto SRC beams. This paper presents an experimental study to investigate the shear capacity of new-type SRC joints. For this purpose, four new-type and one ordinary SRC joints under low reversed cyclic loading were tested, and the failure patterns, load-displacement hysteretic curves, joint shear deformation and steel strain were also observed. The ultimate shear force of joint specimens was calculated according to the beam-end counterforce, and effects of steel shape, load angel and structural measures on shear capacity of joints were analyzed. The test results indicate that: (1) the new-type SRC joints display shear failure pattern and has higher shear capacity than the ordinary one; (2) the oblique specimens have good bearing capacity if designed reasonably; and (3) the two proposed construction measures have little effect on the shear capacity of SRC joints embedded with diagonal cross-shaped steel. Based on the mechanism observed from the test, the formulas for calculating ultimate shear capacity considering the main factors (steel web, stirrup and axial compression ratio) were derived, and the calculated results agreed well with the experimental and simulated data.

등가 기둥 모델을 이용한 철근콘크리트 전단벽-골조 구조물의 푸쉬오버 해석 (Pushover Analysis of Reinforced Concrete Wall-Frame Structures Using Equivalent Column Model)

  • 김용준;한아름;김승남;유은종
    • 한국지진공학회논문집
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    • 제18권1호
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    • pp.53-61
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    • 2014
  • RC shear wall sections which have irregular shapes such as T, ㄱ, ㄷ sections are typically used in low-rise buildings in Korea. Pushover analysis of building containing such members costs a lot of computation time and needs professional knowledge since it requires complicated modeling and, sometimes, fails to converge. In this study, a method using an equivalent column element for the shear wall is proposed. The equivalent column element consists of an elastic column, an inelastic rotational spring, and rigid beams. The inelastic properties of the rotational spring represent the nonlinear behavior of the shearwall and are obtained from the section analysis results and moment distribution for the member. The use of an axial force to compensate the difference in the axial deformation between the equivalent column element and the actual shear wall is also proposed. The proposed method is applied for the pushover analysis of a 5- story shear wall-frame building and the results are compared with ones using the fiber elements. The comparison shows that the inelastic behavior at the same drift was comparable. However, the performance points estimated using the pushover curves showed some deviations, which seem to be caused by the differences of estimated yield point and damping ratios.

철근콘크리트 휨 부재에서 인장, 압축 및 횡보강근이 연성률에 미치는 효과 (Effect of Tension, Compression and Lateral Reinforcement In Ductility Ratio in RC Flexural Members)

  • 연규원;박찬수
    • 콘크리트학회논문집
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    • 제13권6호
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    • pp.553-560
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    • 2001
  • 철근콘크리트 휨부재의 비탄성해석 및 설계를 위해서는 연성능력의 평가가 필요하며, 이를 위해서는 모멘트-곡률 관계가 정의되어야 한다. 따라서, 본 연구에서는 모멘트 곡률관계를 가정하여 철근콘크리트 휨부재의 연성능력을 해석적 방법으로 구하고, 실험결과와 비교한 결과, 실험값과 해석값은 거의 일치하였으므로 가정한 모멘트-곡률관계는 적합한 것으로 판명 되었다. 또한, 연성률은 곡률연성, 회전연성, 변위연성을 비교하였으며, 철근콘크리트 휨부재의 연성능력에 주로 영향을 미치는 요소는 인장철근, 압축철근 및 휨보강근으로 보고, 실험값과 해석값을 다양하게 분석한 결과 ($\rho$$_{s}$$\rho$')/$\rho$의 항으로 연성능력을 나타냄이 적절한 것으로 나타났다.

Modelling of tension-stiffening in bending RC elements based on equivalent stiffness of the rebar

  • Torres, Lluis;Barris, Cristina;Kaklauskas, Gintaris;Gribniak, Viktor
    • Structural Engineering and Mechanics
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    • 제53권5호
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    • pp.997-1016
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    • 2015
  • The contribution of tensioned concrete between cracks (tension-stiffening) cannot be ignored when analysing deformation of reinforced concrete elements. The tension-stiffening effect is crucial when it comes to adequately estimating the load-deformation response of steel reinforced concrete and the more recently appeared fibre reinforced polymer (FRP) reinforced concrete. This paper presents a unified methodology for numerical modelling of the tension-stiffening effect in steel as well as FRP reinforced flexural members using the concept of equivalent deformation modulus and the smeared crack approach to obtain a modified stress-strain relation of the reinforcement. A closed-form solution for the equivalent secant modulus of deformation of the tensioned reinforcement is proposed for rectangular sections taking the Eurocode 2 curvature prediction technique as the reference. Using equations based on general principles of structural mechanics, the main influencing parameters are obtained. It is found that the ratio between the equivalent stiffness and the initial stiffness basically depends on the product of the modular ratio and reinforcement ratio ($n{\rho}$), the effective-to-total depth ratio (d/h), and the level of loading. The proposed methodology is adequate for numerical modelling of tension-stiffening for different FRP and steel reinforcement, under both service and ultimate conditions. Comparison of the predicted and experimental data obtained by the authors indicates that the proposed methodology is capable to adequately model the tension-stiffening effect in beams reinforced with FRP or steel bars within wide range of loading.

고강도 철근을 활용한 휨 부재의 연성거동에 관한 연구 (Flexural Behavior of RC Beams Using High-Strength Reinforcement for Ductility Assessment)

  • 권순범;윤영수
    • 한국방재학회 논문집
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    • 제2권1호
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    • pp.119-126
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    • 2002
  • 본 논문에서는 콘크리트의 고강도화에 따른 고강도 철근의 사용 가능성과 적절한 철근강도를 연구하고자 콘크리트의 강도, 철근강도, 철근비를 주요 변수로 하여 9개의 보 실험체를 계획하였다. 2점 재하를 실시, 휨강도, 응력 이력곡선, 인장철근 항복시의 처짐량, 파괴시의 처짐량, 균열, 연성지수를 측정하여 변수에 따른 구조적 거동을 분석하였다. 고강도 철근을 적용한 부재는 항복점의 변위가 크게 나타났고, 이러한 특성이 연성지수의 감소를 가져오는 주요 요인으로 밝혀졌다. 그러나 항복이후의 거동은 동일한 강성을 갖는 일반강도철근의 부재와 유사하게 나타났다. 일반적으로 고강도 철근의 적용 시 평형철근비의 감소에 의한 철근비의 증가로 연성거동의 감소효과가 나타나고 있으나, 콘크리트의 강도를 증가시키면 연성의 증대효과를 기대할 수 있고, 본 논문으로부터 철근강도 $5500kgf/cm^2$의 경우 콘크리트 강도는 $800kgf/cm^2$ 정도가 기존 연성의 손실 없이 휨 강도를 증가시킬 수 있는 적절한 조합으로 기존의 콘크리트와 동일한 연성거동을 기대할 수 있을 것으로 나타났다.

초고층 건축물의 포스트텐션 슬래브 시스템 적용 (The Application of Post-tensioned Slab System to Tall Buildings)

  • 정광량
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 추계 학술발표회 제20권2호
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    • pp.879-882
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    • 2008
  • 한국의 포스트텐션 시장은 2000년 이후부터 급성장하고 있으며 많은 엔지니어와 시공사들이 관심을 가지고 있다. 본 논문에서는 최근 한국 포스트텐션 시장의 동향과 초고층 포스트텐션 건물의 구조시스템과 시공에 대해 소개하고자 한다. 그리고 초고층 포스트텐션 건축물 설계시 고려해야할 사항에 대해서도 살펴본다. 울산에 위치한 파크폴리스는 39층 타워 2개동으로 구성되어있으며 건물 높이는 지상144m로 현재 공사가 진행중이다. 이 건물은 비부착방식 포스트텐션 시스템으로 설계되었으며 완공시 한국내 최고층 포스트텐션 건물이 될 것이다. 구조시스템은 플랫 슬랩, 외주 기둥, 코어월로 이루어져있다. 처음에는 테두리보를 가지는 일반 철근 콘크리트 구조로 설계되었지만 시공성 향상을 위해 포스트텐션 플랫슬래브로 재설계되었다.

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Nonlinear analysis of damaged RC beams strengthened with glass fiber reinforced polymer plate under symmetric loads

  • Abderezak, Rabahi;Daouadji, Tahar Hassaine;Rabia, Benferhat;Belkacem, Adim
    • Earthquakes and Structures
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    • 제15권2호
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    • pp.113-122
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    • 2018
  • This study presents a new beam-column model comprising material nonlinearity and joint flexibility to predict the nonlinear response of reinforced concrete structures. The nonlinear behavior of connections has an outstanding role on the nonlinear response of reinforced concrete structures. In presented research, the joint flexibility is considered applying a rotational spring at each end of the member. To derive the moment-rotation behavior of beam-column connections, the relative rotations produced by the relative slip of flexural reinforcement in the joint and the flexural cracking of the beam end are taken into consideration. Furthermore, the considered spread plasticity model, unlike the previous models that have been developed based on the linear moment distribution subjected to lateral loads includes both lateral and gravity load effects, simultaneously. To confirm the accuracy of the proposed methodology, a simply-supported test beam and three reinforced concrete frames are considered. Pushover and nonlinear dynamic analysis of three numerical examples are performed. In these examples the nonlinear behavior of connections and the material nonlinearity using the proposed methodology and also linear flexibility model with different number of elements for each member and fiber based distributed plasticity model with different number of integration points are simulated. Comparing the results of the proposed methodology with those of the aforementioned models describes that suggested model that only uses one element for each member can appropriately estimate the nonlinear behavior of reinforced concrete structures.

Non-linear analysis of side-plated RC beams considering longitudinal and transversal interlayer slips

  • Kolsek, Jerneja;Hozjan, Tomaz;Kroflic, Ales;Saje, Miran;Planinc, Igor
    • Steel and Composite Structures
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    • 제16권6호
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    • pp.559-576
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    • 2014
  • A new mathematical model and its finite element formulation for the non-linear stress-strain analysis of a planar beam strengthened with plates bolted or adhesively bonded to its lateral sides is presented. The connection between the layers is considered to be flexible in both the longitudinal and the transversal direction. The following assumptions are also adopted in the model: for each layer (i.e., the beam and the side plates) the geometrically linear and materially non-linear Bernoulli's beam theory is assumed, all of the layers are made of different homogeneous non-linear materials, the debonding of the beam from the side-plates due to, for example, a local buckling of the side plate, is prevented. The suitability of the theory is verified by the comparison of the present numerical results with experimental and numerical results from literature. The mechanical response arising from the theoretical model and its numerical formulation has been found realistic and the numerical model has been proven to be reliable and computationally effective. Finally, the present formulation is employed in the analysis of the effects of two different realizations of strengthening of a characteristic simply supported flexural beam (plates on the sides of the beam versus the tension-face plates). The analysis reveals that side plates efficiently enhance the bearing capacity of the flexural beam and can, in some cases, outperform the tensile-face plates in a lower loss of ductility, especially, if the connection between the beam and the side plates is sufficiently stiff.

Repair of seismically damaged RC bridge bent with ductile steel bracing

  • Bazaez, Ramiro;Dusicka, Peter
    • Steel and Composite Structures
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    • 제26권6호
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    • pp.745-757
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    • 2018
  • The inclusion of a ductile steel bracing as means of repairing an earthquake-damaged bridge bent is evaluated and experimentally assessed for the purposes of restoring the damaged bent's strength and stiffness and further improving the energy dissipation capacity. The study is focused on substandard reinforced concrete multi-column bridge bents constructed in the 1950 to mid-1970 in the United States. These types of bents have numerous deficiencies making them susceptible to seismic damage. Large-scale experiments were used on a two-column reinforced concrete bent to impose considerable damage of the bent through increasing amplitude cyclic deformations. The damaged bent was then repaired by installing a ductile fuse steel brace in the form of a buckling-restrained brace in a diagonal configuration between the columns and using post-tensioned rods to strengthen the cap beam. The brace was secured to the bent using steel gusset plate brackets and post-installed adhesive anchors. The repaired bent was then subjected to increasing amplitude cyclic deformations to reassess the bent performance. A subassemblage test of a nominally identical steel brace was also conducted in an effort to quantify and isolate the ductile fuse behavior. The experimental data from these large-scale experiments were analyzed in terms of the hysteretic response, observed damage, internal member loads, as well as the overall stiffness and energy dissipation characteristics. The results of this study demonstrated the effectiveness of utilizing ductile steel bracing for restoring the bent and preventing further damage to the columns and cap beams while also improving the stiffness and energy dissipation characteristics.