• 제목/요약/키워드: effectiveness of shear reinforcements

검색결과 11건 처리시간 0.025초

고강도 경량 철근콘크리트보의 전단보강 효과 (Effects of Shear Reinforcements on the Reinforced High-Strength Lightweight Concrete Beams)

  • 신성우;이광수;안종문;최명신
    • 콘크리트학회지
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    • 제11권1호
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    • pp.89-97
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    • 1999
  • 본 연구에서는 전단보강비율에 따른 고강도경량 철근콘크리트보의 전단거동을 규명하기 위하여 15개의 실험체를 제작하여 실험하였다. 실험변수는 전단스팬비(a/d=2.5, 3.5, 4.5)와 전단보강근비($0{\sim}1.0_{ACI}{\rho}_v$)이고 큰크리트의 압축강도 (439kg/$cm^2$)와 주철근비(0.02023)는 일정하게 하였다. 실험결과, ACI 규준식은 고강도경량 철근콘크리트보에서 큰크리트의 전단내력은 과소평가하는 반면 전단보강근의 전단내격은 과대평가하는 것으로 나타났다. 큰크리트의 전단강도($V_{cr}$)식에서 경량콘크리트에 대한 추가적인 전단강도저감계수 ${\lambda}$=0.85는 경량콘크리트의 고강도화에 따라서 다소 상향조정하여 사용할 필요가 있는 것으로 보인다. 또한, 전단보강근의 전단강도는 보통중량콘크리트보와 같이 전단보강비율에 직선적으로 비례하는 것이 아니라 그 제곱근에 비례하는 경향을 보였으며, 따라서 고강도경량 철근콘크리트보에서 전단보강근의 유효성(전단보강의 효과)은 보통중량콘크리트에 비해 떨어진다고 볼 수 있다.

전단-스팬비가 작은 고강도철근콘크리트 보의 전단성능 (Shear Capacity of Higth-Strength Concrete Beams With a Shear Span-Depth Ratio Between 1.5 and 2.5)

  • 문정일;안종문;김대근;이광수;이승훈;오정근;장일영;신성우
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1992년도 가을 학술발표회 논문집
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    • pp.106-110
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    • 1992
  • This paper is an experimental study on shear capacity of the high strength R/C beams with a shear span-depth ratio between 1.5 and 2.5. a total of 15 beams was tested to determine diagonal cracking and ultimate shear strength. The major variables are shear span-depth ratio (a/d=1.5, 2.0. 2.5) , vertical shear reinforcements ratio(Vs = 0 , 25, 50, 75, 100% ( Vs = Pv/Pv(ACI)), and concrete compressive strength (f'c= 747㎏/㎠). Test results indicate that ACI 318-89 Eq(11-31) generally underestimates shear strength carried by vertical shear reinforcements, and the mode of failure may change from shear tension to shear compression for the beams having higher Vs than 75%, thus the effectiveness of r-fy on ultimate shear strength (vu) decreased.

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Seismic behavior of reinforced concrete exterior beam-column joints strengthened by ferrocement composites

  • Li, Bo;Lam, Eddie Siu-shu;Wu, Bo;Wang, Ya-yong
    • Earthquakes and Structures
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    • 제9권1호
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    • pp.233-256
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    • 2015
  • This paper presents an experimental study to assess the effectiveness of using ferrocement to strengthen deficient beam-column joints. Ferrocement is proposed to protect the joint region through replacing concrete cover. Six exterior beam-column joints, including two control specimens and four strengthened specimens, are prepared and tested under constant axial load and quasi-static cyclic loading. Two levels of axial load on column (0.2fc'Ag and 0.4fc'Ag) and two types of skeletal reinforcements in ferrocement (grid reinforcements and diagonal reinforcements) are considered as test variables. Experimental results have indicated that ferrocement as a composite material can enhance the seismic performance of deficient beam-column joints in terms of peak horizontal load, energy dissipation, stiffness and joint shear strength. Shear distortions within the joints are significantly reduced for the strengthened specimens. High axial load (0.4fc'Ag) has a detrimental effect on peak horizontal load for both control and ferrocement-strengthened specimens. Specimens strengthened by ferrocement with two types of skeletal reinforcements perform similarly. Finally, a method is proposed to predict shear strength of beam-column joints strengthened by ferrocement.

Experimental investigation of retrofitted shear walls reinforced with welded wire mesh fabric

  • Yuksel, Suleyman B.
    • Structural Engineering and Mechanics
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    • 제70권2호
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    • pp.133-141
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    • 2019
  • The aim of the present paper is to present the cyclic behavior of strengthened reinforced concrete shear wall test specimen, which was reinforced with cold drawn welded wire mesh fabric. Two reinforced concrete shear wall specimens have been tested in the present study. The walls were tested under reversed cyclic loading with loading applied near the tip of the walls. The control wall is tested in its original state to serve as a baseline for the evaluation of the repair and strengthening techniques. The two test specimens include a control wall and a repaired wall. The control wall test specimen was designed and detailed to simulate non-ductile reinforced concrete shear walls that do not meet the modern seismic provisions. The response of the original wall was associated with the brittle failure. The control shear wall was repaired by addition of the reinforcements and the concrete and then it was reloaded. The effectiveness of the repair technique was investigated. Test results indicate that there can be a near full restoration of the walls' strength. The data from this test, augmenting other data available in the literature, will be useful in calibrating improved analytical methods as they are developed.

Steel-CFRP composite and their shear response as vertical stirrup in beams

  • Uriayer, Faris A.;Alam, Mehtab
    • Steel and Composite Structures
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    • 제18권5호
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    • pp.1145-1160
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    • 2015
  • An experimental study was conducted for the effectiveness of steel-CFRP composite (CFRP laminates sandwiched between two steel strips) as stirrups in concrete beam to carry shearing force and comparison was made with conventional steel bar stirrups. A total numbers of 8 concrete beams were tested under four point loads. Each beam measured 1,600 mm long, 160 mm width and 240 mm depth. The beams were composed of same grade of concrete, with same amount of flexural steel but different shear reinforcements. The main variables include, type of stirrups (shape of stirrups and number of CFRP layers used in each stirrup) and number of stirrups used in shear spans. After getting on an excellent closeness between the values of ultimate shear resistance and ultimate tensile load of steel-CFRP stirrups, it could be concluded that the steel-CFRP stirrups represent the effective solution of premature failure of FRP stirrups at the bends.

Strengthening of non-seismically designed beam-column joints by ferrocement jackets with chamfers

  • Li, Bo;Lam, Eddie Siu-Shu;Cheng, Yuk-Kit;Wu, Bo;Wang, Ya-Yong
    • Earthquakes and Structures
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    • 제8권5호
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    • pp.1017-1038
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    • 2015
  • This paper presents a strengthening method that involves the use of ferrocement jackets and chamfers to relocate plastic hinge for non-seismically designed reinforced concrete exterior beam-column joints. An experimental study was conducted to assess the effectiveness of the proposed strengthening method. Four half-scale beam-column joints, including one control specimen and three strengthened specimens, were prepared and tested under quasi-static cyclic loading. Strengthening schemes include ferrocement jackets with or without skeleton reinforcements and one or two chamfers. Experimental results have indicated that the proposed strengthening method is effective to move plastic hinge from the joint to the beam and enhance seismic performance of beam-column joints. Shear stress and distortion within the joint region are also reduced significantly in strengthened specimens. Skeleton reinforcements in ferrocement provide limited improvement, except on crack control. Specimen strengthened by ferrocement jackets with one chamfer exhibits slight decrease in peak strength and energy dissipation but with increase in ductility as compared with that of two chamfers. Finally, a method for estimating moment capacity at beam-column interface for strengthened specimen is developed. The proposed method gives reasonable prediction and can ensure formation of plastic hinge at predetermined location in the beam.

연속교 프리캐스트 바닥판의 교축방향 프리스트레스 설계 (Design of Longitudinal Prestress of Precast Decks in Continuous Bridges)

  • 심창수;김현호;하태열;전승민
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2006년도 춘계학술발표회 논문집(I)
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    • pp.406-409
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    • 2006
  • Serviceability resign is required to control the cracking at the joint of precast decks having longitudinal prestress in continuous composite bridges. Especially, details of twin girder bridges are complex not only due to main reinforcements and transverse prestress for the resign of long-span concrete slabs but also due to shear pockets for obtaining the composite action. This paper suggests the design guidelines for the magnitude of the effective prestress and for the selection of filling materials and their requirements in order to use precast decks for twin-girder continuous composite bridges. The necessary initial prestress was also evaluated through the long-term behavior analysis. From the analysis, existing design examples were revised and their effectiveness was estimated. When a filling material having bonding strength higher than the requirement is used in the region of high negative moment, uniform configuration of longitudinal prestressing steels along the whole span length of continuous composite bridges can be achieved resulting in simplification of details and enhancement of the construction costs.

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Non-invasive steel haunch upgradation strategy for seismically deficient reinforced concrete exterior beam-column sub-assemblages

  • Kanchanadevi, A.;Ramanjaneyulu, K.
    • Steel and Composite Structures
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    • 제28권6호
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    • pp.719-734
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    • 2018
  • Prior to the introduction of modern seismic guidelines, it was a common practice to provide straight bar anchorage for beam bottom reinforcement of gravity load designed building. Exterior joints with straight bar anchorages for beam bottom reinforcements are susceptible to sudden anchorage failure under load reversals and hence require systematic seismic upgradation. Hence in the present study, an attempt is made to upgrade exterior beam-column sub-assemblage of a three storied gravity load designed (GLD) building with single steel haunch. Analytical formulations are presented for evaluating the haunch forces in single steel haunch retrofit. Influence of parameters that affect the efficacy and effectiveness of the single haunch retrofit are also discussed. The effectiveness of the single haunch retrofit for enhancing seismic performance of GLD beam-column specimen is evaluated through experimental investigation under reverse cyclic loading. The single steel haunch retrofit had succeeded in preventing the anchorage failure of beam bottom bars of GLD specimen, delaying the joint shear damage and partially directing the damage towards the beam. A remarkable improvement in the load carrying capacity of the upgraded GLD beam-column sub-assemblage is observed. Further, a tremendous improvement in the energy dissipation of about 2.63 times that of GLD specimen is observed in the case of upgraded GLD specimen. The study also underlines the efficacy of single steel haunch retrofit for seismic upgradation of deficient GLD structures.

균열방지 슬리브가 매설된 패널식 옹벽 (Concrete-Panel Retaining Wall anti-crack sleeve inserted)

  • 장성호;정지승
    • 문화기술의 융합
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    • 제5권3호
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    • pp.345-349
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    • 2019
  • 우리나라는 산지가 70% 이상으로 도로, 철도, 산업단지 조성 등의 기반시설 구축시 원지반 일부를 깍아 부지를 형성하는 이른바 깍기 비탈면이 널리 쓰이고 있다. 최근에는 환경 훼손에 대한 규제가 더욱 엄격해져 대규모 깍기 비탈면을 지양하고 최소한의 용지사용으로 목적구조물을 건설하기 위하여 다양한 방법의 공법들이 개발되어 적용되고 있으며, 그 중 활발하게 적용되는 공법이 패널식 옹벽 공법이다. 패널식 옹벽은 지보재 보강을 통한 원지반의 전단강도 증가와 그 지보재 전면에 프리캐스트 옹벽을 체결하여 벽체를 형성시킴으로써 수평토압에 저항하는 공법이다. 지보재는 쏘일네일링, 어스볼트, 그라운드앵커 등이 사용되고 있으며, 그 중 그라운드앵커는 강선에 미리 인장하중을 도입하는 보다 적극적인 보강형태로 전면판인 패널에 큰 집중하중이 작용하게 된다. 이러한 집중하중은 콘크리트 패널에 균열을 발생시키고 옹벽 자체의 내구성을 저해시키는 요인으로 본 연구에서는 이러한 기존 패널식 옹벽의 단점을 보완하기 위하여 패널 정착부에 강관 슬리브 및 보강재를 매입함으로써 균열을 방지하고, 패널 단부에 요철 모양의 전단키를 적용하여 기존 그라우트앵커가 가지는 개별거동에 대한 취약점을 보완하여 안정성을 향상시켰으며, 옹벽 전면 콘크리트 노출 및 정착부 돌출에 의한 경관성 저하문제를 자연석 문양 연출과 정착부를 돌출시키지 않는 단면구성으로 해결하였다. 패널에 사용된 균열방지 슬리브 및 보강재의 효과를 검증하기 위하여 실내시험 및 3차원 수치해석을 수행한 결과, 강관슬리브 및 보강재의 사용으로 패널의 전반적인 강도 증가와 균열억제 효과가 입증되었다.

Analysis-oriented model for seismic assessment of RC jacket retrofitted columns

  • Shayanfar, Javad;Omidalizadeh, Meysam;Nematzadeh, Mahdi
    • Steel and Composite Structures
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    • 제37권3호
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    • pp.371-390
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    • 2020
  • One of the most common strategies for retrofitting as-built reinforced concrete (RC) columns is to enlarge the existing section through the application of a new concrete layer reinforced by both steel transverse and longitudinal reinforcements. The present study was dedicated to developing a comprehensive model to predict the seismic behavior of as-built RC jacketed columns. For this purpose, a new sectional model was developed to perform moment-curvature analysis coupled by the plastic hinge method. In this analysis-oriented model, new methodologies were suggested to address the impacts of axial, flexural and shear mechanisms, variable confining pressure, eccentric loading, longitudinal bar buckling, and varying axial load. To consider the effective interaction between core and jacket, the monolithic factor approach was adopted to extent the response of the monolithic columns to that of a respective RC jacket strengthened column. Next, parametric studies were implemented to examine the effectiveness of the main parameters of the RC jacket strategy in retrofitting as-built RC columns. Ultimately, the reliability of the developed analytical model was validated against a series of experimental results of as-built and retrofitted RC columns.