• 제목/요약/키워드: Tensile bond behavior

검색결과 106건 처리시간 0.027초

FRACTURE OF HIGH-STRENGTH CONCRETE : Implications for Structural Applications

  • Darwin, David
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 가을 학술발표회논문집(I)
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    • pp.11-30
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    • 2000
  • Structural properties of reinforced concrete, such as bond and shear strength, that depend on the tensile properties of concrete are much lower for high-strength concrete than would be expected based on relationships developed for normal-strength concretes. To determine the reason for this behavior, studies at the University of Kansas have addressed the effects of aggregate type, water-cementitious material ratio, and age on the mechanical and fracture properties of normal and high-strength concretes. The relationships between compressive strength, flexural strength, and fracture properties were studied. At the time of test, concrete ranged in age from 5 to 180 days. Water-cementitious material ratios ranged from 0.24 to 0.50, producing compressive strengths between 20 MPa(2, 920 psi) and 99 MPa(14, 320psi). Mixes contained either basalt or crushed limestone aggregate, with maximum sizes of 12mm(1/2in). or 19mm(3/4in). The tests demonstrate that the higher quality basalt coarse aggregate provides higher strengths in compression than limestone only for the high-strength concrete, but measurably higher strengths in flexure, and significantly higher fracture energies than the limestone coarse aggregate at all water-cementitious material ratios and ages. Compressive strength, water-cementitious material ratio, and age have no apparent relationship with fracture energy, which is principally governed by coarse aggregate properties. The peak bending stress in the fracture test is linearly related to flexural strength. Overall, as concrete strength increases, the amount of energy stored in the material at the peak tensile load increases, but the ability of the material to dissipate energy remains nearly constant. This suggests that, as higher strength cementitious materials are placed in service, the probability of nonductile failures will measurably increase. Both research and educational effort will be needed to develop strategies to limit the probability of brittle failures and inform the design community of the nature of the problems associated with high-strength concrete.

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인장증강효과를 고려한 철근콘크리트 보의 유효휨강성 평가 (Experimental Evaluation of Effective Flexural Rigidity in Reinforced Concrete Beams Considering Tension Stiffening Effect)

  • 이승배;장수연;김상식;이진섭
    • 콘크리트학회논문집
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    • 제17권6호
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    • pp.1033-1042
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    • 2005
  • 최근에 이르기까지 철근콘크리트 휨부재에 있어 콘크리트의 인장응력은 극한강도에 현저한 영향을 미치지 못하기 때문에 그 역할이 고려되어지지 않았다. 그러나 하중-처짐 관계의 구명을 위해서는, 인장증강효과라고 불리는 콘크리트와 보강철근 사이의 인장응력에 의한 강정증가 효과가 반드시 고려되어져야 한다. 이러한 인장증강효과에 영향을 주는 주요 구조변수는 콘크리트의 강도 및 콘크리트와 철근의 부착 등으로 알려져 있다. 이 연구에서는 휨을 받는 보를 대상으론 각기 다른 콘크리트 강도, 피복두께 및 주근의 비부착 길이를 갖도록 모두 20개의 시험체를 제작하여 실험하였다. 이를 통해 각 구조변수들이 시험체의 휨강성, 균열발생 및 진전 등에 미치는 영향 등을 주의 깊게 관찰하고 분석하였다.

양생조건에 따른 변형경화형 시멘트 복합체의 역학적 특성 (Effect of Curing Conditions on the Mechanical Properties of Strain-Hardening Cement Composite (SHCC))

  • 윤현도;김선우;김용철;전에스더;김윤수;지상규
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.909-912
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    • 2008
  • 최근 섬유보강 시멘트 복합체에 관한 연구 중 초기균열 이후 2% 이상의 변형률 이상에까지 인장응력을 증가시킬 수 있는 변형경화형 시멘트 복합체(Strain-Hardening Cement Composite, SHCC)에 관한 연구가 이루어지고 있으며, 이러한 SHCC는 혼입되는 보강섬유의 물리적 형상, 기계적 특성 및 혼입율을 조정함으로써 소요인장성능을 발현시킬 수 있다. 그러나 SHCC 제조시, 혼입되는 보강섬유와의 부착성능을 증진시키기 위하여 규사(Silica powder)와 같이 미세한 직경($105{\sim}120{\mu}m$)의 잔골재를 사용함으로써 타설 후 양생기간 동안 건조수축량이 일반 콘크리트에 비해 심각하여 SHCC 제조시 양생조건에 특별한 주의를 기울여야 한다. 따라서 본 연구에서는 SHCC 양생방법 중 양생온도가 경화후 SHCC의 인장성능에 미치는 영향을 실험적으로 평가하고자 하였으며, 실험결과를 바탕으로 SHCC가 소정의 성능을 발현할 수 있는 양생조건을 실험적으로 규명함으로써 향후 SHCC 프리캐스트 구조부재 제작시 적절한 양생방법을 실시하기 위한 기초자료를 제시하고자 한다.

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Ultimate strength behavior of steel-concrete-steel sandwich beams with ultra-lightweight cement composite, Part 2: Finite element analysis

  • Yan, Jia-Bao;Liew, J.Y. Richard;Zhang, Min-Hong
    • Steel and Composite Structures
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    • 제18권4호
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    • pp.1001-1021
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    • 2015
  • Ultra-lightweight cement composite (ULCC) with a compressive strength of 60 MPa and density of $1,450kg/m^3$ has been developed and used in the steel-concrete-steel (SCS) sandwich structures. This paper investigates the structural performances of SCS sandwich composite beams with ULCC as filled material. Overlapped headed shear studs were used to provide shear and tensile bond between the face plate and the lightweight core. Three-dimensional nonlinear finite element (FE) model was developed for the ultimate strength analysis of such SCS sandwich composite beams. The accuracy of the FE analysis was established by comparing the predicted results with the quasi-static tests on the SCS sandwich beams. The FE model was also applied to the nonlinear analysis on curved SCS sandwich beam and shells and the SCS sandwich beams with J-hook connectors and different concrete core including ULCC, lightweight concrete (LWC) and normal weight concrete (NWC). Validations were also carried out to check the accuracy of the FE analysis on the SCS sandwich beams with J-hook connectors and curved SCS sandwich structure. Finally, recommended FE analysis procedures were given.

A modified RBSM for simulating the failure process of RC structures

  • Zhao, Chao;Zhong, Xingu;Liu, Bo;Shu, Xiaojuan;Shen, Mingyan
    • Computers and Concrete
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    • 제21권2호
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    • pp.219-229
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    • 2018
  • In this paper, a modified rigid body spring model (RBSM) is proposed and used to analyze the damage and failure process of reinforced concrete (RC) structures. In the proposed model, the concrete is represented by an assembly of rigid blocks connected with a uniform distribution of normal and tangential springs to simulate the macroscopic mechanical behavior of concrete. Steel bars are evenly dispersed into rigid blocks as a kind of homogeneous axial material, and an additional uniform distribution of axial and dowel springs is defined to consider the axial stiffness and dowel action of steel bars. Perfect bond between the concrete and steel bars is assumed, and tension stiffening effect of steel bars is modeled by adjusting the constitutive relationship for the tensile reinforcement. Adjacent blocks are allowed to separate at the contact interface, which makes it convenient and easy to simulate the cracking process of concrete. The failure of the springs is determined by the Mohr-Coulomb type criterion with the tension and compression caps. The effectiveness of the proposed method is confirmed by elastic analyses of a cantilever beam under different loading conditions and failure analyses of a RC beam under two-point loading.

Finite element analysis of shear critical prestressed SFRC beams

  • Thomas, Job;Ramaswamy, Ananth
    • Computers and Concrete
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    • 제3권1호
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    • pp.65-77
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    • 2006
  • This study reports the details of the finite element analysis of eleven shear critical partially prestressed concrete T-beams having steel fibers over partial or full depth. Prestressed concrete T-beams having a shear span to depth ratio of 2.65 and 1.59 and failing in the shear have been analyzed using 'ANSYS'. The 'ANSYS' model accounts for the nonlinear phenomenon, such as, bond-slip of longitudinal reinforcements, post-cracking tensile stiffness of the concrete, stress transfer across the cracked blocks of the concrete and load sustenance through the bridging of steel fibers at crack interface. The concrete is modeled using 'SOLID65'-eight-node brick element, which is capable of simulating the cracking and crushing behavior of brittle materials. The reinforcements such as deformed bars, prestressing wires and steel fibers have been modeled discretely using 'LINK8' - 3D spar element. The slip between the reinforcement (rebar, fibers) and the concrete has been modeled using a 'COMBIN39'-non-linear spring element connecting the nodes of the 'LINK8' element representing the reinforcement and nodes of the 'SOLID65' elements representing the concrete. The 'ANSYS' model correctly predicted the diagonal tension failure and shear compression failure of prestressed concrete beams observed in the experiment. The capability of the model to capture the critical crack regions, loads and deflections for various types of shear failures in prestressed concrete beam has been illustrated.

Rehabilitation of RC structural elements: Application for continuous beams bonded by composite plate under a prestressing force

  • Abderezak, Rabahi;Rabia, Benferhat;Daouadji, Tahar Hassaine
    • Advances in materials Research
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    • 제11권2호
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    • pp.91-109
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    • 2022
  • This paper presents a closed-form higher-order analysis of interfacial shear stresses in RC continuous beams strengthened with bonded prestressed laminates. For retrofitting reinforced concrete continuous beams is to bond fiber reinforced prestressed composite plates to their tensile faces. An important failure mode of such plated beams is the debonding of the composite plates from the concrete due to high level of stress concentration in the adhesive at the ends of the composite plate. The model is based on equilibrium and deformations compatibility requirements in and all parts of the strengthened beam, where both the shear and normal stresses are assumed to be invariant across the adhesive layer thickness. In the present theoretical analysis, the adherend shear deformations are taken into account by assuming a parabolic shear stress through the thickness of both the RC continuous beams strengthened with bonded prestressed laminates. The theoretical predictions are compared with other existing solutions. A parametric study has been conducted to investigate the sensitivity of interface behavior to parameters such as laminate stiffness and the thickness of the laminate where all were found to have a marked effect on the magnitude of maximum shear and normal stress in the composite member.

개질유황을 시멘트 대체 혼화재로 사용하기 위한 모르타르의 품질특성 (The Quality Properties of Mortar for Using Hydraulic Modification Sulfur as Admixture for Cement)

  • 김기형;신도철;정호진;이재남;김병권
    • 한국건설순환자원학회논문집
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    • 제6권2호
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    • pp.81-88
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    • 2011
  • 폐유황으로부터 제조한 개질유황재료를 시멘트 대체 혼화재로 활용 가능성 여부를 알아보기 위한 연구의 일환으로 개질유황의 품질특성 및 혼화재료로 사용한 모르타르의 기초적 특성에 대하여 분석 및 검토한 결과 개질유황을 혼합한 모르타르의 유동성은 혼합률이 증가함에 따라 감소하였으며, 압축강도는 저하되었다. 또한, 개질유황을 15% 이내로 혼합한 모르타르의 휨, 인장 및 접착강도는 개선되었으며, 수축량은 증가하였다. 특히 내화학성은 혼합률이 증가함에 따라 우수한 저항성능이 나타났다. 따라서 본 연구에서는 개질유황을 시멘트 대체 혼화재로 활용 가능함을 확인할 수 있었다.

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Cyclic behavior of steel beam-concrete wall connections with embedded steel columns (II): Theoretical study

  • Li, Guo-Qiang;Gu, Fulin;Jiang, Jian;Sun, Feifei
    • Steel and Composite Structures
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    • 제23권4호
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    • pp.409-420
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    • 2017
  • This paper theoretically studies the cyclic behavior of hybrid connections between steel coupling beams and concrete shear walls with embedded steel columns. Finite element models of connections with long and short embedded steel columns are built in ABAQUS and validated against the test results in the companion paper. Parametric studies are carried out using the validated FE model to determine the key influencing factors on the load-bearing capacity of connections. A close-form solution of the load-bearing capacity of connections is proposed by considering the contributions from the compressive strength of concrete at the interface between the embedded beam and concrete, shear yielding of column web in the tensile region, and shear capacity of column web and concrete in joint zone. The results show that the bond slip between embedded steel members and concrete should be considered which can be simulated by defining contact boundary conditions. It is found that the loadbearing capacity of connections strongly depends on the section height, flange width and web thickness of the embedded column. The accuracy of the proposed calculation method is validated against test results and also verified against FE results (with differences within 10%). It is recommended that embedded steel columns should be placed along the entire height of shear walls to facilitate construction and enhance the ductility. The thickness and section height of embedded columns should be increased to enhance the load-bearing capacity of connections. The stirrups in the joint zone should be strengthened and embedded columns with very small section height should be avoided.

초고강도 강섬유보강 철근콘크리트의 인장강화 모델 및 적용 (Tension-Stiffening Model and Application of Ultra High Strength Fiber Reinforced Concrete)

  • 곽효경;나채국;김성욱;강수태
    • 대한토목학회논문집
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    • 제29권4A호
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    • pp.267-279
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    • 2009
  • 이 논문에서는 초고강도 강섬유보강 철근콘크리트 구조물의 단조증가 하중에서 비선형 해석모델을 소개하고 있다. 일반콘크리트에 비해 압축강도와 인장강도가 증가한 초고강도 강섬유보강 콘크리트는 그 거동이 일반콘크리트와 다른 특성을 가지고 있다. 초고강도 강섬유보강 철근콘크리트 구조물에 대한 비선형 해석을 하기에 앞서 실험결과를 이용하여 압축영역에서 응력-변형률, 관계를 회귀분석을 통하여 유추하였고, 초고강도 강섬유보강 철근콘크리트 구조물 거동의 정확한 예측을 위하여 등가일축 응력-변형률 관계를 이용하였다. 또한 균열의 진전에 따른 균열각을 모사하기 위해 평면응력 요소를 이용하였고, 분산철근모델을 이용하여 해석에 적용하였다. 한편, 초고강도 강섬유보강 철근콘크리트의 인장영역에서 응력-변형률 관계를 정의하기 위해 철근과 콘크리트의 부착응력-부착슬립 관계와 강섬유의 영향 등을 고려한 새로운 인장강화 모델을 제안하고 있다. 끝으로 제안된 알고리즘과 응력-변형률 관계 및 인장강화 모델을 한국건설기술연구원에서 실험한 초고강도 강섬유보강 철근콘크리트 부재에 대한 수치해석을 수행하여 실험결과와 비교, 평가하였다.