• 제목/요약/키워드: shrinkage cracking

검색결과 245건 처리시간 0.026초

경량기포콘크리트의 제조 및 기포제의 특성분석 (Preparation of Lightweight Aerated Concrete and Characteristic Analysis of Foaming Agent)

  • 임굉;임재석
    • 공학논문집
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    • 제8권1호
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    • pp.31-50
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    • 2006
  • 수축은 콘크리트에 균열을 발생시키는 경우도 있다. 일반적 조건하에서는 콘크리트의 건조를 피할 수 없으며 건조가 일어나면 수축이 생기므로 대부분의 콘크리트 적용분야에서는 실제로 이와 같이 균열발생을 고려하여야 한다. 균열이 발생한 콘크리트는 균열이 없는 콘크리트에 비하여 강도가 약하고 투과성이 크며 화학적 침식의 영향을 받기 쉽다. 또 재령의 경과에 따라 경량기포콘크리트의 강도발현은 기포제의 종류, 물과 시멘트와의 비, 양생조건 및 기간 등과 같은 인자에 의존하고 있다. 경량기포콘크리트의 강도가 높으면 높을수록 수축에 의하여 균열이 발생할 가능성이 감소한다. 그러므로 온돌구조용으로의 경량기포콘크리트의 강도는 소포율과 시멘트의 건조수축과의 균열저감효과에 크게 의존된다.

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수축보상형 콘크리트의 균열억제 효과에 관한 연구 (A Study on the Cracking Control Effects of Shrinkage Reduction Concrete)

  • 최형길;김규용;노구치 타카푸미
    • 콘크리트학회논문집
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    • 제27권5호
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    • pp.569-577
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    • 2015
  • 콘크리트의 균열억제 대책으로서 이용되고 있는 팽창 콘크리트를 대상으로 그 기본 특성의 파악 및 실부재로의 팽창재의 효과에 대해서 검토했다. 실내실험으로서 기본특성에 대해 검토한 결과, 팽창재의 적용에 의해 콘크리트의 건조수축 및 자기수축의 저감효과를 확인할 수 있었다. 또한, 팽창 콘크리트의 완전 구속조건 하에서의 응력-강도비는 보통 콘크리트에 비해 낮은 결과로 팽창재에 의한 인장응력의 저감효과를 확인할 수 있었다. 한편, 구속 조건하에서 팽창 콘크리트는 보통 콘크리트와 비교해 응력완화에 따른 변형능력이 향상되어 균열저항성의 향상을 기대할 수 있다고 판단된다. 실부재로의 검토에 있어서, 구속체의 영향이 작은 외벽에 있어서도 팽창 콘크리트는 초기재령에 있어 팽창에 수반하는 압축응력이 유효하게 도입되어 인장응력을 저감할 수 있다. 더욱이, 장기재령에 있어서의 균열을 평가한 결과, 팽창 콘크리트의 균열면적은 보통 콘크리트의 약 35%로 팽창재의 균열저감 효과를 확인할 수 있었다.

VES-LMC의 열 특성을 고려한 자기수축 (Autogenous Shrinkage of VES-LMC considering Hydration-Heat)

  • 최판길;이봉학
    • 산업기술연구
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    • 제25권B호
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    • pp.73-80
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    • 2005
  • Durability of concrete structures is seriously compromised by cracking at early-age concretes, particularly in high-strength or high-performance concrete structures. Since early-age cracking is influenced by various factors that affect the hydration process, early-age shrinkage and stress/strain development, the behavior at early-age is highly complex and no rational methodologies for its control have yet been established. Concrete structures often present volumetrical changes particularly due to thermal and moisture related shrinkages. Volumetric instability is detrimental to the performance and durability of concrete structures because structural elements are usually restrained. These restrained shrinkages develope tensile stresses which often results in cracking in combination with the low fracture resistance of concrete. Early-age defects in high-performance concrete due to thermal and autogenous deformation shorten the life cycle of concrete structures. Thus, it is necessary to examine the behavior of early-age concrete at the stages of design and construction. The purpose of this study was to propose a shrinkage models of VES-LMC (very-early strength latex-modified concrete) at early-age considering thermal deformation and autogenous shrinkage.

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Prediction of moments in composite frames considering cracking and time effects using neural network models

  • Pendharkar, Umesh;Chaudhary, Sandeep;Nagpal, A.K.
    • Structural Engineering and Mechanics
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    • 제39권2호
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    • pp.267-285
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    • 2011
  • There can be a significant amount of moment redistribution in composite frames consisting of steel columns and composite beams, due to cracking, creep and shrinkage of concrete. Considerable amount of computational effort is required for taking into account these effects for large composite frames. A methodology has been presented in this paper for taking into account these effects. In the methodology that has been demonstrated for moderately high frames, neural network models are developed for rapid prediction of the inelastic moments (typically for 20 years, considering instantaneous cracking, and time effects, i.e., creep and shrinkage, in concrete) at a joint in a frame from the elastic moments (neglecting instantaneous cracking and time effects). The proposed models predict the inelastic moment ratios (ratio of elastic moment to inelastic moment) using eleven input parameters for interior joints and seven input parameters for exterior joints. The training and testing data sets are generated using a hybrid procedure developed by the authors. The neural network models have been validated for frames of different number of spans and storeys. The models drastically reduce the computational effort and predict the inelastic moments, with reasonable accuracy for practical purposes, from the elastic moments, that can be obtained from any of the readily available software.

100 MPa급 수축보상 초고강도 변형경화형 시멘트 복합체를 사용한 인장부재의 인장강성 및 균열특성 (Tension-Stiffening and Cracking Behavior of 100 MPa Shrinkage-Compensated Ultra High-Strength Strain-Hardening Cement Composite (UHS-SHCC) Ties)

  • 송영재;윤현도
    • 콘크리트학회논문집
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    • 제25권4호
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    • pp.371-379
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    • 2013
  • 이 논문에서는 100 MPa 수축보상된 초고강도 변형경화형 시멘트 복합체 및 보통 콘크리트를 사용한 인장부재의 단조 및 반복재하시 인장강성 및 균열특성을 비교 평가하였다. 재하단계별 인장부재의 전체 변형률 및 표면균열 특성은 인장부재의 양측에 설치된 두 개의 변위계와 50배율 확대 가능한 계측기에 의해 측정되었다. 시멘트 복합체의 특성에 따른 인장부재의 인장 강성 및 균열특성을 평가하기 위하여 보통 콘크리트, 수축보상 변형경화형 시멘트 복합체 및 보통 변형경화형 시멘트 복합체 등 세 종류의 시멘트 복합체가 사용되었다. 실험 결과, 초고강도 변형경화형 시멘트 복합체의 시멘트 중량의 10%를 팽창재로 대체 시 초기 수축량은 현저하게 감소되었으며 인장부재의 초기균열강도도 증가되는 경향을 보였다. 수축보상된 초고강도 변형경화형 시멘트 복합체를 사용한 인장부재는 재하 단계별로 균열이 부재길이 전면에 확산되고 균열폭이 감소되어 인장강성 특성을 개선하였다. 반복재하시 인장부재의 인장거동 특성은 단조재하시와 큰 차이를 보이지 않았다.

초고강도 콘크리트의 수축 균열 특성 및 구속도 평가 (Evaluation of Shrinkage Cracking Characteristics and Degree of Restraint for Ultra-High-Strength Concrete)

  • 류두열;민경환;양준모;윤영수
    • 콘크리트학회논문집
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    • 제22권5호
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    • pp.641-650
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    • 2010
  • 콘크리트의 수축으로부터 발생하는 구속응력은 균열을 유발하고, 그에 따라 황산염 및 염화이온의 침투로 인한 철근의 부식으로 인해 콘크리트 구조물의 내구성을 저하시킨다. 특히, W/B가 감소할수록 균열 발생 가능성이 크며, 따라서 고강도 콘크리트(HSC), 초고강도 콘크리트(UHSC)의 수축 및 균열 거동의 정확한 이해와 평가가 필요하다. 하지만, 기존의 비구속 수축 실험은 콘크리트의 강도발현, 응력의 이완, 균열강도 및 구속도 등을 고려할 수 없으며, 균열 발생에 영향을 미치는 수축량의 평가에 한계가 있었다. 따라서 이 연구에서는 비구속 수축실험과 구속 수축실험(ring-test)을 통하여 W/B(30, 25, 16%) 및 혼화재에 따른 HSC, UHSC의 수축, 균열 거동을 평가하였다. 실험 결과, 자기수축 및 총 건조수축은 W/B가 클수록, 플라이애쉬(FA) 및 고로슬래그미분말(BFS)의 치환율이 증가할수록 감소하는 것으로 나타났으며, W/B의 증가 및 콘크리트 두께의 증가, FA의 혼입은 균열 발생을 효과적으로 억제하는 것으로 나타났다.

초속경라텍스개질콘크리트의 초기수축 (Early-Age Shrinkage of Very-Early Strength Latex Modified Concrete)

  • 이정호;최판길;최승식;윤경구
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 추계 학술발표회 제16권2호
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    • pp.269-272
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    • 2004
  • After concrete casts, temperature decent and shrinkage bring volume changes of concrete pavement. Microcracking and cracking in concrete pavement are caused by these volume changes. As a result, durability of concrete pavement is deteriorated. Recently, Very-Early Strength Latex Modified concrete(below:VESLMC) from the beginning of High-Way is used as urgent repair material for bridge deck. The advantage of VESLMC is that compressive and flexural strength at 3 hours age are 4.5MPa and 21MPa respectively. It allows the traffic to open in 3 hours. But, this material has the problem which is early-age shrinkage cracking caused by water self-dissipation with rapid hydration reaction and water evaporation with body dry. Unfortunately, until now, the research about early-age shrinkage of VESLMC leaves something to be desired. Therefore, the purpose of this study is to present the early-age shrinkage of VESLMC respect to latex contents and shrinkage ratio to maximum length change that can help field engineers' skill. Latex contents of 0, 5, 10, 15, $20\%$ in standard of same workability in VESLMC are selected by experimental variables. After initial set, shrinkage value was measured with 10mm LVDT for 3 days. The results of maximum shrinkage ratio were 0.019, 0.017, 0.023, $0.027\%$ respectively.

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Shrinkage and crack characteristics of filling materials for precast member joint under various restraint conditions

  • Lim, Dong-Kyu;Choi, Myoung-Sung
    • Advances in concrete construction
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    • 제14권2호
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    • pp.139-151
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    • 2022
  • Filling materials poured into precast member joint are subjected to restraint stress by the precast member and joint reinforcement. The induced stress will likely cause cracks at early ages and performance degradation of the entire structure. To prevent these issues and design reasonable joints, it is very important to analyze and evaluate the restrained shrinkage cracks of filling materials at various restraint conditions. In this study, a new time zero-that defines the shrinkage development time of a filling material-is proposed to calculate the accurate amount of shrinkage. The tensile stresses and strengths at different ages were compared through the ring test (AASHTO PP34) to evaluate the crack potential of the restrained filling materials at various restraint conditions. The mixture which contained an expansive additive and a shrinkage reducing agent exhibited high resistance to shrinkage cracking owing to the high-drying shrinkage compensation effect. The high-performance, fiber-reinforced cement composite, and ultra-high-performance, fiber-reinforced cement composite yielded very high resistance to shrinkage and cracking owing to the pull-out property of steel fibers. To this end, multiple nonlinear regression analyses were conducted based on the test results. Accordingly, a modified tensile stress equation that considered both the geometric shape of the specimen and the intrinsic properties of the material is proposed.

Fabrication of Porous Yttria-Stabilized Zirconias Controlled by Additives

  • Paek, Yeong-Kyeun;Oh, Kyung-Sik;Lee, Hyuk-Jae
    • 한국세라믹학회지
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    • 제44권2호
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    • pp.79-83
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    • 2007
  • To fabricate a thick, porous yttria-stabilized zirconia without cracking and warping, a method for the simultaneous control of the porosity and shrinkage was designed. As a pore former, a potato starch was used. For the control of shrinkage the oxidation of Al metal particles was used. For the sintering of the above powder mixtures, a partial sintering technique was used at $1300^{\circ}C$ for 10 min in air. Upon adding the additives, high open porosity above 53% and a low shrinkage level were obtained. As a result cracking and warping of the sintered body were deterred. This outcome most likely resulted from the compensation of sintering shrinkage due to the volume expansion caused by oxidation of the Al metal particles during heat-treatment.

화산쇄설물을 사용한 소일콘크리트의 균열특성과 보수방법에 관한 연구 (Crack Characteristics of Soil Concrete Using Volcaniclastic and the Crack Repair Method)

  • 홍종현
    • 한국환경과학회지
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    • 제19권6호
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    • pp.737-746
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    • 2010
  • Restraint to drying shrinkage is the most common cause of concrete cracking. In many applications, drying shrinkage cracks are inevitable. In this paper, the surface cracks of soil concrete caused by drying shrinkage were considered to become an one of concrete textures. So, laboratory shrinkage tests were conducted and the results were applied to the field applications. The study results were summarized as follows; First, the use of vinyl sheets and concrete polymers helped to control the concrete cracking. Second, crack propagation usually started at the interfaces of soil concrete slabs and the cracks grew to the inner slabs. Third, surface cracks of soil concrete slabs could be an one of good concrete textures