• 제목/요약/키워드: reinforced concrete joints

검색결과 321건 처리시간 0.021초

철도하중에 대한 철근 콘크리트와 강섬유 보강 철근 콘크리트 전단이음부의 피로거동에 관한 실험적 연구 (Study on the Fatigue Behavior of a Joint between RC and SFRC Subjected to Shear)

  • 강보순
    • 한국철도학회논문집
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    • 제3권4호
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    • pp.194-202
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    • 2000
  • Fatigue behavior of shear joints between the combined reinforced concrete(RC) and the reinforced steel fiber concrete(SFRC) specimens has been experimentally investigated. Experimental parameters used are the amount of steel fiber and the type of shear joint. Six specimens have been tested under static load, and eight specimens have been subjected to the fatigue load in a range of 50 % and 5 % of the ultimate static load. The purpose of this research is to propose an empirical formula for fatigue shear behavior of the combined RC and SFRC structures on the basis of experimental result. It can be observed from experimental results that addition of steel fibers to concrete specimen increases the static ultimate load by approximately 25 %, enhances the fatigue behavior, and also reduces vertical and lateral displacements at the shear joint for a given load cycle after the occurrence of first crack.

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반복하중을 받는 ├형 철근콘크리트 접합부의 전단특성에 관한 연구 (A Study on the Shear Characteristic of├ Type Reinforced Concrete Joints under Cyclic Loading)

  • 이상호;이동화
    • 한국지진공학회논문집
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    • 제5권2호
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    • pp.73-82
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    • 2001
  • 본 연구는 실험적 방법과 해석적 방법을 통하여 반복하중을 받는 ├형 철근콘크리트 접합부의 전단특성을 파악함을 목적으로 한다. ├형 접합부는 고강도 재료의 사용으로 인한 체적의 감소 뿐만 아니라, 지진발생 시 반복하중의 작용으로 인한 변동축력 등으로 , 구조적으로 취약한 부분이 될 가능성이 있다. 따라서 본 연구에서는 ├형 접합부의 전단특성을 파악하기 위하여 기동축력, 콘크리트 압축강도, 접합부 전단보강근비를 변수로 한 12개의 실험체를 제작하여 가력실험을 수행하였다. 또한, 유한요소 해석을 수행하여 본 실험결과와의 비교 검토를 통하여 타당성을 검토한 후, 기둥축력과 콘크리트 압축강도의 변화에 대한 변수해석을 통하여 접합부의 전단강도에 미치는 변수는 영향을 파악하였으며, 실험에 의한 실험체의 전단내력을 기존에 제안된 AIJ, ACI 규준 등과 비교 검토하였다. 본 연구의 결로부터 기둥축력과 콘크리트 압축강도가 ├형 철근콘크리트 접합부의 전단강도에 미치는 영향을 확인하였다.

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고인성섬유 복합모르타르를 활용한 고강도 철근콘크리트 내부 보-기둥 접합부의 내진성능 개선 연구 (A Study on Improvement of Seismic Performance of High Strength Reinforced Concrete Interior Beam-Column Joints using High Ductile Fiber-Reinforced Mortar)

  • 하기주;홍건호
    • 콘크리트학회논문집
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    • 제24권6호
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    • pp.753-760
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    • 2012
  • 이 연구에서는 고강도 철근콘크리트 내부 보-기둥 접합부의 시공성 및 내진성능을 개선하기 위하여 보-기둥 접합부 영역의 스터럽 및 띠철근 유무에 따라 고인성섬유 복합모르타르를 사용하여 내진성능을 평가하였다. 총 6개의 실험체를 제작하고 실험을 수행하여 내진성능을 평가하였으며, 이 연구의 실험 결과를 근거로 다음과 같은 결론을 얻었다. 기존 고강도 철근콘크리트 내부 보-기둥 접합부의 위험단면 영역을 고인성섬유 복합모르타르로 보강한 결과 재하 전 과정을 통하여 섬유의 가교역할로 인한 균열 분산효과로 인하여 균열 제어 효과가 커서 안정적인 파괴형태 및 내력을 나타내었다. 고강도 철근콘크리트 내부 보-기둥 접합부의 시공성 및 내진성능을 개선하기 위하여 고인성섬유 복합모르타르를 사용하여 보강한 실험체($IJNSP_{1.0}$, $IJNSP_{1.5}$, $IJNSP_{2.0}$)는 스터럽과 띠철근이 제거되었음에도 안정적인 이력거동을 나타내었고, 최대내력이 표준실험체의 96~102.8%, 에너지소산능력은 최대 0.99~1.11배로 표준실험체와 거의 비슷한 에너지소산능력을 나타내었다.

고인성섬유 복합 모르타르 및 고성능 배근상세를 활용한 고강도 철근콘크리트 내부 보-기둥 접합부의 내진성능 개선 연구 (A Study on Improvement of Seismic Performance of High Strength Reinforced Concrete Interior Beam-Column Joints Using High Ductile Fiber-Reinforced Mortar and Advanced Reinforcing Detailings)

  • 하기주;이동렬;홍건호
    • 콘크리트학회논문집
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    • 제25권2호
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    • pp.233-240
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    • 2013
  • 이 연구에서는 고강도 철근콘크리트 내부 보-기둥 접합부의 내진성능을 개선하기 위하여 보-기둥 접합부 영역을 고성능 배근상세 및 고인성섬유 복합 모르타르를 사용하여 보강하고 내진성능을 평가하였다. 총 5개의 실험체를 제작하고 실험을 수행하여 내진성능을 평가하였으며, 이 연구의 실험 결과를 근거로 다음과 같은 결론을 얻었다. 기존 고강도 철근콘크리트 내부 보-기둥 접합부의 위험단면 영역을 고성능 배근상세 및 고인성섬유 복합 모르타르로 보강한 결과 재하 전 과정을 통하여 안정적인 파괴형태 및 내력을 나타내었다. 고강도 철근콘크리트 내부 보-기둥 접합부의 내진성능을 개선하기 위하여 고성능 배근상세 및 고인성섬유 복합 모르타르를 사용하여 보강한 실험체(IJIR, IJIRS, IJIRP)는 재하 전 과정을 통하여 안정적인 이력거동을 나타내었고, 최대내력이 표준실험체의 114.2~123.5%, 에너지소산능력은 1.55~1.85배로 표준실험체에 비하여 매우 향상되었다.

슬래브가 있는 고강도 철근 콘크리트 넓은 보-기둥 접합부의 거동 (Behavior of High Strength Reinforced Concrete Wide Beam-Column Joint with Slab)

  • 최종인;안종문;신성우;박성식;이범식;양지수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 봄 학술발표회 논문집
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    • pp.493-498
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    • 2002
  • An experimental investigation was conducted to study the behavior of high-strength RC wide beam-column joints with slab subjected to reversed cyclic loads under constant axial load. Six half scale interior wide beam-column assemblies representing a portion of a frame subjected to simulated seismic loading were tested, including three specimens without slab and three specimens with slab. The primary variables were compressive strength of concrete( $f_{ck}$ =240, 500kgf/c $m^2$), the ratio of the column-to-beam flexural capacity( $M_{r}$=2$\Sigma$ $M_{c}$$\Sigma$ $M_{b}$ ; 0.77-2.26), extended length of the column concrete($\ell$$_{d}$ ; 0, 9.6, 30cm), ratio of the column-to-beam width(b/H ; 1.54, 1.67). Test results are shown that (1) the behavior of specimen using high-strength concrete satisfied the required minimum ductile capacity according to increase the compressive strength, (2). In the design of the wide beam-column joints, one should be consider the effects of slab stiffness which is ignored in the current design code and practice.ice.e.e.

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Behavior of composite CFST beam-steel column joints

  • Eom, Soon-Sub;Vu, Quang-Viet;Choi, Ji-Hun;Papazafeiropoulos, George;Kim, Seung-Eock
    • Steel and Composite Structures
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    • 제32권5호
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    • pp.583-594
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    • 2019
  • In recent years, composite concrete-filled steel tubular (CFST) members have been widely utilized in framed building structures like beams, columns, and beam-columns since they have significant advantages such as reducing construction time, improving the seismic performance, and possessing high ductility, strength, and energy absorbing capacity. This paper presents a new composite joint - the composite CFST beam-column joint in which the CFST member is used as the beam. The main components of the proposed composite joint are steel H-beams, CFST beams welded with the steel H-column, and a reinforced concrete slab. The steel H-beams and CFST beams are connected with the concrete slab using shear connectors to ensure composite action between them. The structural performance of the proposed composite joint was evaluated through an experimental investigation. A three-dimensional (3D) finite element (FE) model was developed to simulate this composite joint using the ABAQUS/Explicit software, and the accuracy of the FE model was verified with the relevant experimental results. In addition, a number of parametric studies were made to examine the effects of the steel box beam thickness, concrete compressive strength, steel yield strength, and reinforcement ratio in the concrete slab on the proposed joint performance.

Seismic behavior of interior RC beam-column joints with additional bars under cyclic loading

  • Lu, Xilin;Urukap, Tonny H.;Li, Sen;Lin, Fangshu
    • Earthquakes and Structures
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    • 제3권1호
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    • pp.37-57
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    • 2012
  • The behavior of beam-column joints in moment resisting frame structures is susceptible to damage caused by seismic effects due to poor performance of the joints. A good number of researches were carried out to understand the complex mechanism of RC joints considered in current seismic design codes. The traditional construction detailing of transverse reinforcement has resulted in serious joint failures during earthquakes. This paper introduces a new design philosophy involving the use of additional diagonal bars within the joint particularly suitable for low to medium seismic effects in earthquake zones. In this study, ten full-scale interior beam-column specimens were constructed with various additional reinforcement details and configurations. The results of the experiment showed that adding additional bars is a promising approach in reinforced concrete structures where earthquakes are eminent. In terms of overall cracking observation during the test, the specimens with additional bars (diagonal and straight) compared with the ones without them showed fewer cracks in the column. Furthermore, concrete confinement is certainly an important design measure as recommended by most international codes.

Experimental research on seismic behavior of novel composite RCS joints

  • Men, Jinjie;Guo, Zhifeng;Shi, Qingxuan
    • Steel and Composite Structures
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    • 제19권1호
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    • pp.209-221
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    • 2015
  • Results from an experimental study on the seismic response of six composite reinforced concrete column-to-steel beam interior joints are presented. The primary variable investigated is the details in the joint. For the basic specimen, the main subassemblies of the beam and column are both continuous, and the steel beam flanges extended to the joint are partly cut off. Transverse beam, steel band plates, cove plates, X shape reinforcement bars and end plates are used in the other five specimens, respectively. After the joint steel panel yielded, two failure modes were observed during the test: local failure in Specimens 1, 2 and 4, shear failure in Specimens 3, 5 and 6. Specimens 6, 3, 5 and 4 have a better strength and deformation capacity than the other two specimens for the effectiveness of their subassemblies. For Specimens 2 and 4, though the performance of strength degradation and stiffness degradation are not as good as the other four specimens, they all have excellent energy dissipation capacity comparing to the RC joint, or the Steel Reinforced Concrete (SRC) joint. Based on the test result, some suggestions are presented for the design of composite RCS joint.

재보수-보강된 철근콘크리트 보-기둥 접합부의 구조특성 (Structural Characteristics of Reinforced Concrete Beam-Column Joints Repaired and Restrengthening)

  • 조창호;김정섭
    • 한국구조물진단유지관리공학회 논문집
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    • 제7권2호
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    • pp.231-238
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    • 2003
  • 지진에 의해 피해를 입은 철근콘크리트 건축물을 재사용이 가능하도록 보수-보강을 실시하여 구조적으로 안전성을 확보하게 되는데 이러한 보수-보강이 부적절하게 시공되었거나, 재지진을 받아 구조내력이 크게 감소된다면 다시 보수-보강을 할 수 밖에 없다. 본 연구에서는 지진 발생시 가장 우려되는 보-기둥 접합부를 실험 대상으로 선정하여, 시험체에 1차 동적하중과 2차 동적하중을 작용시킨 후 각각 보수-보강을 실시한 다음 구조특성 및 하중속도에 따른 보강성능을 검토하여 재보수-보강의 타당성을 규명하였다.

철골 모멘트골조로 보강된 철근콘크리트 건물의 내진성능 평가 (Seismic Performance Evaluation of Non-Seismic Reinforced Concrete Buildings Strengthened by Perimeter Steel Moment Frame)

  • 김선웅
    • 한국지진공학회논문집
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    • 제24권5호
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    • pp.233-241
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    • 2020
  • This paper is to investigate the retrofitting effect for a non-seismic reinforced concrete frame strengthened by perimeter steel moment frames with indirect integrity, which ameliorates the problems of the direct integrity method. To achieve this, first, full-scale tests were conducted to address the structural behavior of a two-story non-seismic reinforced concrete frame and a strengthened frame. The non-seismic frame showed a maximum strength of 185 kN because the flexural-shear failure at the bottom end of columns on the first floor was governed, and shear cracks were concentrated at the beam-column joints on the second floor. The strengthened frame possessed a maximum strength of 338 kN, which is more than 1.8 times that of the non-seismic specimen. A considerable decrease in the quantity of cracks for the strengthened frame was observed compared with the non-seismic frame, while there was the obvious appearance of the failure pattern due to the shear crack. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be reasonably determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The proposed method had an error of about 2.2% for the non-seismic details and about 4.4% for the strengthened frame based on the closed results versus the experimental results.