• 제목/요약/키워드: reinforced concrete structures (RC)

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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.

Seismic behavior of steel frames with replaceable reinforced concrete wall panels

  • Wu, Hanheng;Zhou, Tianhua;Liao, Fangfang;Lv, Jing
    • Steel and Composite Structures
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    • 제22권5호
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    • pp.1055-1071
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    • 2016
  • The paper presents an innovative steel moment frame with the replaceable reinforced concrete wall panel (SRW) structural system, in which the replaceable concrete wall can play a role to increase the overall lateral stiffness of the frame system. Two full scale specimens composed of the steel frames and the replaceable reinforced concrete wall panels were tested under the cyclic horizontal load. The failure mode, load-displacement response, deformability, and the energy dissipation capacity of SRW specimens were investigated. Test results show that the two-stage failure mode is characterized by the sequential failure process of the replaceable RC wall panel and the steel moment frame. It can be found that the replaceable RC wall panels damage at the lateral drift ratio greater than 0.5%. After the replacement of a new RC wall panel, the new specimen maintained the similar capacity of resisting lateral load as the previous one. The decrease of the bearing capacity was presented between the two stages because of the connection failure on the top of the replaceable RC wall panel. With the increase of the lateral drift, the percentage of the lateral force and the overturning moment resisted by the wall panel decreased for the reason of the reduction of its lateral stiffness. After the failure of the wall panel, the steel moment frame shared almost all the lateral force and the overturning moment.

Flexural behavior of retrofitted RC columns by FRP-MF, Experimental approach

  • Mahdavi, Navideh;Tasnimi, Abbas Ali
    • Steel and Composite Structures
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    • 제33권3호
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    • pp.347-356
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    • 2019
  • Most of the recent studies have improved the efficiency of FRP jackets for increasing the compressive strength, shear strength, and ductility of reinforced concrete columns; however, the influence of FRP jackets on the flexural capacity is slight. Although new methods such as NSM (near surface mounted) are utilized to solve this problem, yet practical difficulties, behavior dependency on adhesives, and brittle failure necessitate finding better methods. This paper presents the results of an experimental study on the application of fiber-reinforced polymer fastened mechanically to the concrete columns to improve the flexural capacity of RC columns. For this purpose, mechanical fasteners were used to achieve the composite behavior of FRP and concrete columns. The experimental program included five reinforced concrete columns retrofitted by different methods using FRP subjected to constant axial compression and lateral cyclic loading. The experimental results showed that the use of the new method proposed in this paper increased the flexural strength and lateral load capacity of the columns significantly, and good composite action of FRP and RC column was achieved. Moreover, the experimental results were compared with the results obtained from the analytical study based on strain compatibility, and good proximity was reached.

콘크리트 구조물의 비선형해석을 위한 재료모델 비교연구 (A Study on the Stress-Strain Relationships for Nonlinear Analysis of Concrete Structures)

  • 오병환;김영진;이형준;홍기중;박승진;임선택
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1994년도 봄 학술발표회 논문집
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    • pp.65-70
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    • 1994
  • Reinforced concrete and prestressed concrete structures consist of different materials, namely concrete, reinforcing steel and/or prestressing steel. Reinforcing and prestressing steels can be considered homogeneous materials, and their properties are generally well defined. Howefer, concrete is a heterogeous materials, and it is difficult to define its properties accurately. Both concrete and steel exhibit various nonlinear materials properties. The stress-strain relationship of concrete is not only nonlinear, but it differs in compression and tension. And, tensile cracking is one of the most importnat factors which contribute to the nonlinear behavior of reinforced concrete structrures. In this strudy, the various stress-strain relationships of concrete and reinforcing steel in nonlinear analysis of RC and PC structures are examined.

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2차원 래티스 모델에 의한 반복 하중을 받는 철근콘크리트 기둥의 해석 (Analysis of Reinforced Concrete Columns under Cyclic Loads Using a 2-Dimensional Lattice Model)

  • 권민호;하기주;박태규;조창근
    • 콘크리트학회논문집
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    • 제22권1호
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    • pp.103-111
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    • 2010
  • 미국, 유럽 그리고 일본에서는 90년대 말에 큰 지진을 경험하면서부터 지진에 대한 성능 설계 개념이 설계 기준에 포함되기 시작하였다. 일반적으로 스트럿-타이 모델은 D-영역에서 비교적 강도를 잘 예측하지만 파괴 때 연성정보를 제공하진 않는다. 그러므로 RC 구조물의 강도와 연성을 예측할 수 있는 간단한 해석 도구가 필요하다. 이 연구에서 RC 구조물의 지진에 대한 거동을 해석할 수 있는 도구인 2차원 래티스 모델을 제안한다. 2차원 래티스 모델은 실험을 통한 상관관계 연구에서 RC 구조물의 강도뿐만 아니라 연성도 예측하는 것으로 나타났다.

탄소섬유 보강재로 보강한 RC 보의 보강효과에 관한 실험적 연구 (An Experimental Study on the Strengthening Effect of RC Beams Strengthened by CFRP)

  • 김재훈;박성무;강주원
    • 한국공간구조학회논문집
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    • 제5권4호
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    • pp.71-77
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    • 2005
  • 보강방법으로 많이 사용되고 있는 CFRP Plate 접착 공법은 보강된 부재의 내력 증가에 아주 효과적이나 에폭시를 이용하여 표면 부착하는 특성상 충분한 성능을 발휘하지 못하고 보강 판의 탈락으로 파괴에 이르는 조기파괴(premature failure)의 파괴 특성을 보인다. 이러한 보강 실험체의 파괴 특성은 철근비, 콘크리트 강도, 보강재 종류, 보강길이, 접착제인 에폭시의 물성 등의 변수들에 의해 영향을 받는다. 본 연구에서는 CFRP Plate로 휨 보강된 RC 보의 구조적 거동 및 보강재 조기 탈락에 대한 보완으로 보강 CFRP-Rod를 이용한 표면매립공법의 휨 성능효과를 보기 위하여 수행된 실험결과를 비교 고찰한다. CFRP Plate 외부부착 공법을 적용한 RC 보강보의 주요 변수로는 보강재 길이, 보강위치(보의 인장면 및 측면), 단부 보강철물 유무 등의 실험변수로, CFRP-Rod는 보강재 길이를 변수로 하여 실험을 수행하였다.

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RC Building 구조물의 폭발해석 및 손상평가 (Blast Analysis and Damage Evaluation for Reinforced Concrete Building Structures)

  • 박양흠;윤성환;장일영
    • 대한토목학회논문집
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    • 제41권4호
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    • pp.331-340
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    • 2021
  • 본 논문은 비예측 극한하중인 폭발하중에 노출된 RC building 구조물의 폭발손상평가를 위한 수치해석적 연구이다. 수치해석의 효율성 및 정확성을 높이기 위해, 폭발하중에 대한 정의, 유체-구조 연성을 위한 Euler-Lagrange 커플링 기법 적용, 그리고 고변형률 속도가 고려된 콘크리트 및 강재 재료구성모델이 제안된다. 특히 효율적인 폭발하중 정의를 위해, Euler-FCT 기법을 통하여 TNT 질량에 따른 시간별 압력하중 데이터가 확보되고, 이는 RC building 구조물 총 7 지점의 폭발위치에 적용되며, ANSYS-AUTODYN 솔버에 연결되어 수치 시뮬레이션이 수행된다. 해석결과, TNT 질량 및 폭발 위치에 따라 손상 차이가 발생하였으며, 먼저 TNT 질량 20 kg 일 경우 3 곳의 폭발손상 지점에서 주부재 중 슬래브에서만 중간 및 가벼운 손상이 발생되었고, TNT 질량 100 kg 일 경우 5 곳의 폭발손상 지점 중 3 곳은 슬래브 및 보 부재에서 중간 손상이 발생되었으며, 2 곳은 슬래브에서 심각한 손상이 발생되었다.

Application of GMDH model for predicting the fundamental period of regular RC infilled frames

  • Tran, Viet-Linh;Kim, Seung-Eock
    • Steel and Composite Structures
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    • 제42권1호
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    • pp.123-137
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    • 2022
  • The fundamental period (FP) is one of the most critical parameters for the seismic design of structures. In the reinforced concrete (RC) infilled frame, the infill walls significantly affect the FP because they change the stiffness and mass of the structure. Although several formulas have been proposed for estimating the FP of the RC infilled frame, they are often associated with high bias and variance. In this study, an efficient soft computing model, namely the group method of data handling (GMDH), is proposed to predict the FP of regular RC infilled frames. For this purpose, 4026 data sets are obtained from the open literature, and the quality of the database is examined and evaluated in detail. Based on the cleaning database, several GMDH models are constructed and the best prediction model, which considers the height of the building, the span length, the opening percentage, and the infill wall stiffness as the input variables for predicting the FP of regular RC infilled frames, is chosen. The performance of the proposed GMDH model is further underscored through comparison of its FP predictions with those of existing design codes and empirical models. The accuracy of the proposed GMDH model is proven to be superior to others. Finally, explicit formulas and a graphical user-friendly interface (GUI) tool are developed to apply the GMDH model for practical use. They can provide a rapid prediction and design for the FP of regular RC infilled frames.

보수.보강된 RC 구조물의 경계면 파괴를 고려한 수치해석 기법 개발 (Development of Numerical Tool considering Interfacial Fracture Behavior in Repaired RC Structure)

  • 임윤묵;김문겸;신승교;고태호
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 봄 학술발표회 논문집
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    • pp.553-558
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    • 2000
  • In this study, a numerical simulation that can effectively predict the interfacial fracture behavior in repaired structures is developed using the axial deformation link elements. In repaired structures, concrete and interface are considered as quais-brittle materials, and steel plate as a repair material and reinforcement are modeled as elasto-plastic materials. The behavior of repaired reinforced concrete structures under flexural loading conditions is numerically simulated, and compaired with experimental results. The strengthening effect according to the length and thickness of the repair material is studied and rip-off, debonding and rupture failure mechanism of interface between substrate and repair materials are detected. It is shown that the interface properties affect on the mechanical behavior of repaired structures. Therefore, the developed numerical method using axial deformation link elements can be used for determining the strengthening effects and failure mechanism of repaired structures.

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복합재료 패널로 보강된 철근 콘크리트 보의 휨 실험 (Experiment on Flexural Analysis of RC Beams Strengthened with Composite Material Panel)

  • 김진만;정미루;이재홍;윤광섭
    • 한국공간구조학회논문집
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    • 제10권2호
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    • pp.117-126
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    • 2010
  • 본 논문은 복합재료 패널로 보강된 철근 콘크리트 보의 휨 실험과 해석을 통하여 패널의 보강효과에 대하여 알아보고자 한다. FRP 복합재료 패널은 전통적인 재료인 강재와 콘크리트에 비해 단위 무게당 강도 및 강성이 크고 부식에 대한 높은 저항성, 절연성, 고내구성 및 낮은 열전도성 등 우수한 물성으로 유지관리 측면에서 매우 유리하여 최근 많은 연구가 이루어지고 있다. 따라서 본 연구에서는 범용 유한요소 해석 프로그램인 ABAQUS를 이용하여 복합재료 패널로 보강된 철근 콘크리트 보의 극한 하중을 예측하고 실험을 수행하여 그 보강효과에 대한 고찰하였다. 복합재료 패널은 복합재료 패널 층의 유리섬유직조 형태에 따라 LT, DB, DBT로 구분하고 복합재료 패널의 층 개수에 따라 2ply, 3ply로 구분하였다. 실험을 수행한 결과, 해석과 일치하였으며 복합재료 패널로 보강한 철근 콘크리트 보가 극 한강도 측면에서 효율적이었다는 결론도 얻었다.

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