• 제목/요약/키워드: shear reinforcement

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와이어로프로 횡보강된 고중량콘크리트 전단벽의 연성평가 (Ductility Evaluation of Heavyweight Concrete Shear Walls with Wire Ropes as a Lateral Reinforcement)

  • 문주현;양근혁
    • 콘크리트학회논문집
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    • 제27권3호
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    • pp.207-214
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    • 2015
  • 이 연구에서는 중량콘크리트 전단벽의 경계요소내에서 횡보강근으로서 와이어로프의 적용가능성을 평가하였다. 와이어로프의 횡보강근의 배근간격은 60 mm에서 120 mm로 변화되었는데, 이때의 횡보강근체적지수는 0.126~0.234이다. 와이어로프는 주철근의 외부와 경계요소내 내부의 크로스타이로 적용되었다. 와이어로프로 횡보강된 5개의 중량콘크리트 전단벽은 축력하중하에서 반복횡하중의 실험이 수행되었다. 실험결과, 횡보강근체적지수가 증가함에 따라 전단벽의 연성은 현저하게 증가한 반면, 휨 내력의 변화는 미미하였다. 전단벽의 휨 내력의 실험결과는 ACI 318-11 기준의 예측값 보다 다소 높았다. 동일한 횡보강근체적지수에서 와이어로프로 횡보강된 전단벽의 변위연성비는 일반철근으로 보강된 전단벽보다 높았다. 특히, 이 실험결과로부터 고연성설계를 위한 곡률연성비 16 이상을 확보하기 위해서는 횡보강근체적지수가 0.233 이상이 요구되었다.

철근콘크리트 기둥에서 원형전단철근의 유효전단강도 (Effective Shear Strength of Circular Transverse Reinforcement in Reinforced Concrete Columns)

  • 하태훈;홍성걸
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 봄 학술발표회 논문집
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    • pp.271-276
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    • 2002
  • Existing design equations generally overestimate the shear strength of the circular transverse reinforcement. This is due to the simplification of the discrete distribution of the reinforcement to the continuous one and the inappropriate application of the classical truss model to the circular section, which is different in shear-resisting component from the rectangular section. The present study introduces a new model considering the starting point of the diagonal crack, the number of transverse reinforcing bars crossing the crack and the effective strength component of the transverse resistance. This model leads to a simple design equation which is derived using the linear regression method and is in agreement with the lower bound of exact strength curve.

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탄소섬유를 사용한 철근콘크리트 전단벽의 휨성능 개선에 관한 실험연구 (An Experimental Study on the Improvement of Flexural Capacity of Reinforced Concrete Shear Wall Using Carbon Fibers)

  • 하기주;서수연;신종학;전찬목;김성수;이상근
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2003년도 봄 학술발표회 논문집
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    • pp.567-572
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    • 2003
  • An experimental work is presented to evaluate the retrofit method for improving the flexural capacity of shear walls. Fives shear wall specimens are designed and retrofitted by using carbon fiber materials such as rod, sheet and plate. Cyclic horizontal loads are applied to the specimens under constant axial load, $0.1f_{ck}A_g$. Test result shows that specimens with additional flexural reinforcement have the increased initial stiffness and deformation capacity. However, the strength is not improved as much as expected. This is because that the flexural reinforcement is pulled out from the foundation at the latter half of cycles. In order to maximize the flexural retrofit, therefore, it is required to study the anchorage behavior of the flexural reinforcement for retrofit.

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강섬유보강 콘크리트와 일반 콘크리트 합성보의 전단강도 (Shear Strength of Steel Fiber Concrete - Plain Concrete Composite Beams)

  • 김철구;박홍근;홍건호;강수민
    • 콘크리트학회논문집
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    • 제27권5호
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    • pp.501-510
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    • 2015
  • 최근 프리캐스트 콘크리트에 현장타설 콘크리트를 타설하는 복합화 공법의 사용이 증가하고 있다. 강섬유 콘크리트는 습식공법에서는 시공성 문제로 적용이 어렵지만, 공장에서 선 제작이 이뤄지는 프리캐스트 부재에는 충분히 사용 가능하다. 강섬유 콘크리트가 복합화 공법에 사용되면 서로 재료적 특성이 다른 강섬유 콘크리트와 일반 콘크리트 합성단면의 전단강도 산정법이 문제가 되고 있다. 하지만 현행 기준은 명확한 기준을 제시하지 못하고 있는 실정이다. 따라서 강섬유 콘크리트가 사용된 합성 부재의 전단강도 실험을 통해 강섬유 콘크리트가 합성단면의 전단강도에 미치는 영향을 살펴보았다. 실험 변수로는 합성단면적비와 전단철근비를 고려하였다. 실험결과를 살펴보면, 강섬유가 인장대에 보강된 경우 강섬유 보강 단면적에 비례하여 전단강도가 증가하였다. 하지만 강섬유의 영향으로 인해 계면에서 수평전단파괴가 쉽게 발생하기 때문에 최소 수평전단철근이 반드시 필요하다.

고강도 재료가 사용된 철근콘크리트 부재의 전단파괴모드 (Shear Failure Modes of Reinforced Concrete Members with High-Strength Materials)

  • 이정윤;김경원
    • 한국공간구조학회논문집
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    • 제6권2호
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    • pp.53-60
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    • 2006
  • 고강도 재료(고강도 콘크리트, 고강도 철근)가 사용된 철근콘크리트 부재의 전단파괴모드는 보통강도 재료를 사용한 부재의 전단파괴모드와 상이한 결과를 나타낼 수 있다. 고강도 재료가 사용될 경우에 구조설계기준식에서 요구하는 전단보강철근이 먼저 항복한 후에 콘크리트가 압축파괴하는 것과는 다르게, 철근이 항복하기 이전에 콘크리트가 압축파괴할 수 있다. 이 논문에서는 고강도 재료가 사용된 철근콘크리트 부재의 최대철근비를 균형파괴시의 재료의 응력 및 변형률 상태를 이용하여 계산하였다. 제안식에서 최대철근비는 콘크리트의 압축강도와 전단보강철근의 상호관계에 의하여 변화하였다. 제안식은 97개의 철근콘크리트 부재에 대한 실험결과와 비교되었다. 실험결과 및 계산결과는 철근콘크리트 부재의 파괴모드가 전단보강철근의 양과 콘크리트의 압축강도와 밀접한 관계가 있음을 나타내었다.

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Tests and Design Provisions for Reinforced-Concrete Beams Strengthened in Shear Using FRP Sheets and Strips

  • Mofidi, Amir;Chaallal, Omar
    • International Journal of Concrete Structures and Materials
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    • 제8권2호
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    • pp.117-128
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    • 2014
  • Numerous investigations of RC beams strengthened in shear with externally-bonded (EB) fibre-reinforced polymer (FRP) sheets, plates and strips have been successfully conducted in recent years. These valuable studies have highlighted a number of influencing parameters that are not captured by the design guidelines. The objective of this study was: (1) to highlight experimentally and analytically the influential parameters on the shear contribution of FRP to RC beams strengthened in shear using EB FRP sheets and strips; and (2) to develop a set of transparent, coherent, and evolutionary design equations to calculate the shear resistance of RC beams strengthened in shear. In the experimental part of this study, 12 tests were performed on 4,520-mm-long T-beams. The specimens were strengthened in shear using carbon FRP (CFRP) strips and sheets. The test variables were: (1) the presence or absence of internal transverse-steel reinforcement; (2) use of FRP sheets versus FRP strips; and (3) the axial rigidity of the EB FRP reinforcement. In the analytical part of this study, new design equations were proposed to consider the effect of transverse-steel in addition to other influential parameters on the shear contribution of FRP. The accuracy of the proposed equations has been verified in this study by predicting the FRP shear contribution of experimentally tested RC beams.

Diagonal Tension Failure Model for RC Slender Beams without Shear Reinforcement Based on Kinematical Conditions (II) - Verification

  • 유영민
    • 한국해양공학회지
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    • 제21권6호
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    • pp.16-25
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    • 2007
  • In a companion paper, a rational mechanical model to predict the entire behavior of point-loaded RC slender beams (a/d > 2.5) without shear reinforcement was developed. This paper presents the test results of 9 slender shear beams and compares them with analytical results performed by the proposed model. They are grouped by two parameters, which are shear span ratio and concrete strength. Three kinds of concrete strength the 26.5, 39.2, and 58.8 MPa were included as a major experimental parameter together with different shear span ratios ranging from 3 to 6 depending on the test series. Tests were set up as a traditional 3 point bending test. Various measurements were taken to monitor abrupt shear failure. Test results were not only compared with analytical results from the proposed model, but also other formulas, to consider the various aspects of shear failure such as kinematical conditions or shear capacity. Finally, a review of the proposed model is presented with respect to the shear transfer mechanisms and the effect of test parameters. Results show that several assumptions and proposals adopted in the proposed model are rational and reasonable.

지오셀을 적용한 지반의 보강효과에 관한연구 (Effect Reinforced Ground using Geocell)

  • 신은철;김성환;오영인
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.782-791
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    • 2009
  • This study was carried out the laboratory tests and field plate load test in order to evaluate the reinforcement effect of geocell for road construction. The geocell-reinforced subgrade shows the increment of cohesion and friction angle with comprison of non-reinforced subgrade. In addition, the field plate load test was performed on the geocell-reinforced subgrade to estimate the bearing capacity of soil. The direct shear test was conducted with utilizing a large-scale shear box to evaluate the internal soil friction angle with geocell reinforcement. The number of cells in the geocell system is varied to investigate the effect of soil reinforcement. The theoretical bearing capacity of subgrade soil with and without geocell reinforcement was estimated by using the soil internal friction angle. The field plate load tests were also conducted to estimate the bearing capacity with geocell reinforcement. It is found out that the bearing capacity of geocell-reinforced subgrade gives 2 times higher value than that of unreinforced subgrade soil. In the future, the reinforcement effect of the geocell rigidity and load-balancing effect of the geocells should be evaluated.

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선형보강재와 평면보강재를 적용한 토체의 전단강도 및 투수특성 (Shear Strength and Permeability Characteristics of Soil Body Reinforced with Linear and Planar Reinforcing Materials)

  • 차경섭;장병욱;우철웅;박영곤
    • 한국농공학회지
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    • 제45권6호
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    • pp.162-171
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    • 2003
  • Traditional methods of earth reinforcement consist of introducing strips, fabrics, or grids into an earth mass. Recently, discrete fibers are simply added and mixed with the soil, much the same as cement, lime or other additives. The advantages of randomly distributed fibers is the maintenance of strength isotropy, low decrease in post-peak shear strength and high stability at failure. In this study, new composite reinforcement structures which consist of geotextile and randomly distributed discrete fibers were examined their engineering properties, such as shear strength of the composite reinforced soil and permeability of short fiber reinforced soil. The increments of shear strength of composite reinforced soils were the sum of increments by fiber and woven geotextile, respectively. The permeability of short fiber reinforced soil was increased with fiber mixing ratio.

조립식 콘크리트 대형판구조물의 접합부 전단내력특성에 관한 실험적 고찰 (A Experimental Study on the Shear Resistant Characteristics of the Large Precast Concrete Panel Structures)

  • 송영훈;전상우;윤정배;정일영
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1993년도 가을 학술발표회 논문집
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    • pp.237-242
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    • 1993
  • Precast concrete panel buildings are designed to tracsmit shear forces through the joint between the reinforced concrete panels. The shear strength is partly provided by the resistance to sliding at the interface between the precast and in- situ concrete and partly by the dowel action of the reinforcement crossing the joint. The shear resistance to sliding is largely dependent on the shapes and configurations of vertical joints and the vertical loads of horizontal joints. In this paper, the shear strength by the difference of relative strength between panel and joint, the effect of reinforcement, and the effect of vertical load are considered.

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