• 제목/요약/키워드: reinforcement cracking

검색결과 366건 처리시간 0.027초

CSA 팽창재를 혼입한 철근보강 모르타르의 인장 경화-연화 특성에 관한 실험적 연구 (Experimental Study on Tension-Hardening and Softening Characteristics in Reinforced Mortar with CSA Expansion Agent)

  • 최세진;안중길;박기태;권성준
    • 한국구조물진단유지관리공학회 논문집
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    • 제18권1호
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    • pp.101-110
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    • 2014
  • 팽창재는 콘크리트의 건조/자기수축으로 인한 균열에 매우 효과적인 혼화재료이며 콘크리트 내부 철근에 화학적 프리스트레스를 인가할 수 있다. 본 논문에서는 CSA 팽창재에 의해 화학적 프리스트레스가 도입된 모르타르의 인장경화성능을 평가하였다. 철근으로 내부구속이 이루어진 철근 모르타르 시편에 대하여 일축인장시험을 수행하였으며, 균열거동 특성과 인장경화 특성을 분석하였다. CSA 모르타르에서는 압축강도 및 탄성계수는 약간 감소하였으나, 화학적 압축응력이 철근에 도입되었으며, 일반 모르타르 부재에 비해 167.5% 초기균열하중이 증가하였다. 높은 인장경화특성을 평가하였으며, 기존의 인장연화모델과 실험값을 비교하여 기존 제안식의 보완점을 제시하였다.

Large-scale testing and numerical study on an innovative dovetail UHPC joint subjected to negative moment

  • Zhang, Qifeng;Feng, Yan;Cheng, Zhao;Jiao, Yang;Cheng, Hang;Wang, Jingquan;Qi, Jianan
    • Computers and Concrete
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    • 제30권3호
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    • pp.175-183
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    • 2022
  • To study the working mechanism and size effect of an innovative dovetail UHPC joint originated from the 5th Nanjing Yangtze River Bridge, a large-scale testing subject to negative bending moment was conducted and compared with the previous scaled specimens. The static responses, i.e., the crack pattern, failure mode, ductility and stiffness degradation were analyzed. It was found that the scaled specimens presented similar working stages and working mechanism with the large-scale ones. However, the post-cracking ductility and relative stiffness degradation all decrease with the enlarged length/scale, apart from the relative stiffness after flexural cracking. The slab stiffness at the flexural cracking stage is 90% of the initial stiffness while only 24% of the initial stiffness reserved in the ultimate stage. Finite element model (FEM) was established and compared with the experiments to verify its effectiveness in exploring the working mechanism of the innovative joint. Based on this effective method, a series of FEMs were established to further study the influence of material strength, pre-stressing level and ratio of reinforcement on its deflection-load relationship. It is found that the ratio of reinforcement can significantly improve its load-carrying capacity among the three major-influenced factors.

Flexural performance of composite sandwich wall panels with foamed concrete

  • Lei Li;Wei Huang;Zhengyi Kong;Li Zhang;Youde Wang;Quang-Viet Vu
    • Steel and Composite Structures
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    • 제52권4호
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    • pp.391-403
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    • 2024
  • The flexural behavior of composite sandwich wall panels with different thicknesses, numbers of holes, and hole forms, and arrangement form of longitudinal steel bar (uniform type and concealed-beam type) are investigated. A total of twelve composite sandwich wall panels are prepared, utilizing modified polystyrene particles mixed with foam concrete for the flexural performance test. The failure pattern of the composite sandwich wall panels is influenced by the extruded polystyrene panel (XPS) panel thickness and the reinforcement ratio in combination, resulting in both flexural and shear failure modes. Increasing the XPS panel thickness causes the specimens to transition from flexural failure to shear failure. An increase in the reinforcement ratio leads to the transition from flexural failure to shear failure. The hole form on the XPS panel and the steel bar arrangement form affect the loading behavior of the specimens. Plum-arrangement hole form specimens exhibit lower steel bar strain and deflection compared to linear-arrangement hole form specimens. Additionally, specimens with concealed beam-type steel bar display lower steel bar strain and deflection than uniform-type steel bar specimens. However, the hole form and steel bar arrangement form have a limited impact on the ultimate load. Theoretical formulas for cracking load are provided for both fully composite and non-composite states. When compared to the experimental values, it is observed that the cracking load of the specimens with XPS panels closely matches the calculations for the non-composite state. An accurate prediction model for the ultimate load of fully composite wall panels is developed. These findings offer valuable insights into the behavior of composite sandwich wall panels and provide a basis for predicting their performance under various design factors and conditions.

소성 이론에 의한 강섬유 보강 초고성능콘크리트의 전단 마찰 강도식 제안 (Shear Friction Strength based on Limit Analysis for Ultra-High Performance Fiber Reinforced Concrete)

  • 이지형;홍성걸
    • 콘크리트학회논문집
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    • 제27권3호
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    • pp.299-309
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    • 2015
  • 강섬유 보강 초고성능 콘크리트(UHPFRC)는 뛰어난 압축 및 인장강도를 가지고 있는 재료이다. 일반 콘크리트는 균열 발생 후 균열에 수직으로 보강된 철근의 구속력을 수직항력으로, 구속력에 의해 발생하는 골재 맞물림 등에 의한 균열면의 거칠기를 마찰 계수로 표현하여 전단 마찰 강도를 정의하고 있다. UHPFRC는 골재 맞물림 현상은 없으나 강섬유의 부착응력에 의한 균열 후 인장력이 상당히 큰 특징이 있으며, 이러한 특징은 전단 마찰 강도에 반영되어야 함이 타당하다. 본 연구에서는 전단면에 횡철근이 보강된 24개의 직접 전단실험체를 제작하여 푸시 오프 실험을 수행하였다. 실험결과는 소성 이론에 의해 분석되었으며 이로부터 전단 마찰 계수와 유효 계수를 도출하였다. 소성 이론에 의한 전단 마찰 강도식은 기존 실험결과 및 기존 전단 마찰 강도식과 비교하여 타당성을 검증하였으며, 최종적으로 UHPFRC의 균열 후 인장강도를 고려한 일체식 구조체의 전단 마찰 강도식을 제안하였다.

프리스트레스트 강합성거더의 분절 접합부 구조거동에 관한 실험적 연구 (An Experimental Study on Structural Behavior of Segmental Joint in Prestressed Composite Girder)

  • Lee, Juwon;Ha, Taeyul;Yang, Inwook;Han, Jongwook
    • 한국재난정보학회 논문집
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    • 제12권4호
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    • pp.422-431
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    • 2016
  • 본 연구에서는 프리스트레스트 강합성 거더의 콘크리트 케이싱 분절부 상세에 따른 연결부 성능 평가를 위해 각각 다른 분절부를 가진 실험체를 제작하여 실험하였다. 분절부가 없는 일반 강합성 거더와 분절부에 이음철근 보강 유무 및 이음철근 상세를 변수로 하는 총 4본의 비교 실험체를 제작하여 구조적 거동 평가하였다. 또한, 분절형 강합성 거더의 비균열등급 설계 가능 여부 및 균열발생 후 루프철근 상세에 따른 강성과 강도 영향에 대해 분석하고, 매립강판면과 타설접합면에 따른 균열폭 제어 적정성을 평가하였다.

FE modeling of inelastic behavior of reinforced high-strength concrete continuous beams

  • Lou, Tiejiong;Lopes, Sergio M.R.;Lopes, Adelino V.
    • Structural Engineering and Mechanics
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    • 제49권3호
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    • pp.373-393
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    • 2014
  • A finite element model for predicting the entire nonlinear behavior of reinforced high-strength concrete continuous beams is described. The model is based on the moment-curvature relations pre-generated through section analysis, and is formulated utilizing the Timoshenko beam theory. The validity of the model is verified with experimental results of a series of continuous high-strength concrete beam specimens. Some important aspects of behavior of the beams having different tensile reinforcement ratios are evaluated. In addition, a parametric study is carried out on continuous high-strength concrete beams with practical dimensions to examine the effect of tensile reinforcement on the degree of moment redistribution. The analysis shows that the tensile reinforcement in continuous high-strength concrete beams affects significantly the member behavior, namely, the flexural cracking stiffness, flexural ductility, neutral axis depth and redistribution of moments. It is also found that the relation between the tensile reinforcement ratios at critical negative and positive moment regions has great influence on the moment redistribution, while the importance of this factor is neglected in various codes.

Improving Durability Performance of Reinforced Concrete Structures with Probabilistic Analysis

  • Ferreira, Rui Miguel
    • International Journal of Concrete Structures and Materials
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    • 제2권2호
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    • pp.137-143
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    • 2008
  • In recent years, much research work has been performed on durability design and long-term performance of concrete structures in marine environments. In particular, the development of new procedures for probability-based durability design has been shown to provide a more realistic basis for the analysis. This approach has been successfully applied to several new concrete structures, where requirements for a more controlled durability and service life have been specified. For reinforced concrete structures in a marine environment, it is commonly assumed that the dominant degradation mechanism is the corrosion of the reinforcement due to the presence of chlorides. The design approach is based on the verification of durability limit states, examples of which are: depassivation of reinforcement, cracking and spalling due to corrosion, and collapse due to cross section loss of reinforcement. With this design approach the probability of failure can be determined as a function of time. In the present paper, a probability-based durability performance analysis is used in order to demonstrate the importance of the durability design approach of concrete structures in marine environments. In addition, the sensitivity of the various durability parameters affecting and controlling the durability of concrete structures in a marine environment is studied. Results show that the potential of this approach to assist durability design decisions making process is great. Based the crucial information generated, it is possible to prolong the service life of structures while simultaneously optimizing the final design solution.

Seismic analysis of RC tubular columns in air-cooled supporting structure of TPP

  • Wang, Bo;Yang, Ke;Dai, Huijuan;Bai, Guoliang;Qin, Chaogang
    • Earthquakes and Structures
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    • 제18권5호
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    • pp.581-598
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    • 2020
  • This paper aims to investigate the seismic behavior and influence parameters of the large-scaled thin-walled reinforced concrete (RC) tubular columns in air-cooled supporting structures of thermal power plants (TPPs). Cyclic loading tests and finite element analysis were performed on 1/8-scaled specimens considering the influence of wall diameter ratio, axial compression ratio, longitudinal reinforcement ratio, stirrup reinforcement ratio and adding steel diagonal braces (SDBs). The research results showed that the cracks mainly occurred on the lower half part of RC tubular columns during the cyclic loading test; the specimen with the minimum wall diameter ratio presented the earlier cracking and had the most cracks; the failure mode of RC tubular columns was large bias compression failure; increasing the axial compression ratio could increase the lateral bearing capacity and energy dissipation capacity, but also weaken the ductility and aggravate the lateral stiffness deterioration; increasing the longitudinal reinforcement ratio could efficiently enhance the seismic behavior; increasing the stirrup reinforcement ratio was favorable to the ductility; RC tubular columns with SDBs had a much higher bearing capacity and lateral stiffness than those without SDBs, and with the decrease of the angle between columns and SDBs, both bearing capacity and lateral stiffness increased significantly.

Behavior of pre-cracked deep beams with composite materials repairs

  • Boumaaza, M.;Bezazi, A.;Bouchelaghem, H.;Benzennache, N.;Amziane, S.;Scarpa, F.
    • Structural Engineering and Mechanics
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    • 제63권5호
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    • pp.575-583
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    • 2017
  • The study covers the behavior of reinforced concrete deep beams loaded under 4-point bending, failed by shear and repaired using bonding glass fiber reinforced plastics fabrics (GFRP) patches. Two rehabilitation methods have been used to highlight the influence of the composite on the ultimate strength of the beams and their failure modes. In the first series of trials the work has been focused on the reinforcement/rehabilitation of the beam by following the continuous configuration of the FRP fabric. The patch with a U-shape did not provide satisfactory results because this reinforcement strategy does not allow to increase the ultimate strength or to avoid the abrupt shear failure mode. A second methodology of rehabilitation/reinforcement has been developed in the form of SCR (Strips of Critical Region), in which the composite materials reinforcements are positioned to band the inclined cracks (shear) caused by the shear force. The results obtained by using this method lead a superior out come in terms of ultimate strength and change of the failure mode from abrupt shearing to ductile bending.

터널 건전도 평가를 위한 라이닝 모델실험 (Model Test of Lining for Estimation of Tunnel Soundness)

  • 김영근
    • 자연, 터널 그리고 지하공간
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    • 제1권2호
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    • pp.59-71
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    • 1999
  • Recently, many deformations in tunnel such as crack and leakage were occulted. Specially, the defects of tunnel lining have been a serious problem in safety and stability many repair works for maintenance in tunnel have been carried out. Therefore, it is necessary to estimate the structural cracking for countermeasure in deformed tunnel and to investigate on the characteristics of lining system and the soundness of tunnel. In this study model tests for tunnel lining were carried out using test apparatus and centrifuge, In the direct loading test, the prototype was Kyungbu high-speed railway tunnel and the scale is 1/10, and lining models were made of concrete. Test conditions included load conditions such as direction, shape and type, lining conditions such as single and double lining, thickness, and reinforcement. In centrifuge model test, the prototype was Seoul subway tunnel and the scale is 1/100, and lining models were made of aluminum and hydrostone. Test conditions included tunnel defects such as thickness shortage. behind cavity and longitudinal cracks, reinforcement methods such as epoxy, grouting and carbon sheet. From these model tests , the characteristics of deformation and failure for tunnel lining were estimated, and the structural behaviors of deformed lining and the effects of repair and reinforcement for tunnel lining were researched.

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