• 제목/요약/키워드: crack width calculation

검색결과 32건 처리시간 0.017초

루프이음 반두께 프리캐스트 바닥판을 갖는 콘크리트 바닥판의 균열폭 제어 (Crack Width Control on Concrete Slab using Half-Depth Precast Panels with Loop Joints)

  • 김동욱;심창수
    • 대한토목학회논문집
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    • 제35권1호
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    • pp.19-29
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    • 2015
  • 반두께 프리캐스트 콘크리트 바닥판의 적용이 증가함에 따라, 프리캐스트 구조물 간의 연결에 대한 연구가 증가하고 있다. 또한, 프리캐스트 패널을 갖는 합성바닥판에서 패널간에는 횡방향 이음부의 연속적인 거동이 요구된다. 이 논문에서는 루프이음 방식을 적용하여 교축방향 패널과 패널사이의 이음부에 구조적 연속성과 성능을 평가하였다. 실험결과로부터 바닥판의 연속성 확보를 위한 루프철근 이음부의 휨강도 및 균열제어의 연속성을 확인하였다. 실험결과 루프이음 철근 간격을 좁게 한 경우의 휨강도가 1.52배 증진되는 효과를 보였다. 또한, 루프이음부에 횡방향 철근은 균열제어에 매우 효율적임을 확인하였다.

GFRP로 보강된 RC보의 계면박리파괴 해석모델 (An Analytical Model on the Interface Debonding Failure of RC Beams Strengthened by GFRP)

  • 김규선;심종성
    • 콘크리트학회논문집
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    • 제11권3호
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    • pp.69-80
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    • 1999
  • The strengthening of reinforced concrete structures by externally bonded GFRP has become increasingly common in resent years. However the analysis and design method for GFRP plate strengthening of RC beams is not well established yet. The purpose of present paper is, therefore, to define the failure mechanism and failure behavior of strengthened RC beam using GFRP and then to propose a resonable method for the calculation of interface debonding load for those beams. From the experimental results of beams strengthened by GFRP, the influence of length and thickness, width of plate on the interfacial debonding failure behavior of beam is studied and, on the basis of test results, the semi-empirical equation to predict debonding load is developed. The proposed theory based on nonlinear analysis and critical flexural crack width, predicts relatively well the debonding failure load of test beams and may be efficiently used in the analysis and design of strengthened RC beams using GFRP.

개선된 이진화와 형상분석 기법을 응용한 콘크리트 표면 균열의 화상처리 알고리즘 개발 (Development of Image Processing for Concrete Surface Cracks by Employing Enhanced Binarization and Shape Analysis Technique)

  • 이방연;김윤용;김진근
    • 콘크리트학회논문집
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    • 제17권3호
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    • pp.361-368
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    • 2005
  • 이 연구의 목적은 디지털 카메라나 비디오 카메라로 촬영된 콘크리트 표면 균열 화상에서 컴퓨터가 자동으로 균열을 검출하고 균열의 폭, 길이, 방향을 계산할 수 있는 알고리즘을 개발하는 것이다. 개발한 알고리즘의 기본 구조는 기존의 연구 결과들과 유사하며, 기존 연구들과의 차이점은 다음과 같다 (1) 빈의 영향을 제거하기 위한 모폴로지 기법의 적용, (2) 개선된 이진화 기법과 형상 분석을 통한 검출 성능 향상, (3) 폭, 길이, 방향 계산을 위한 세부 알고리즘을 제시한 것이다. 제시한 알고리즘의 유효성을 검증하기 위하여 MATLAB 언어를 이용하여 알고리즘을 구현하였으며, 디지털 카메라를 통하여 얻은 실제 균열 화상을 사용하여 시험하였다. 시험결과는 제시한 알고리즘이 균열을 정확히 검출할 수 있음을 나타냈으며, 이 연구에서 제시한 방법으로 계산한 균열의 폭, 길이, 그리고 방향의 값을 균열 폭 측정 현미경, 자, 그리고 각도기로 계측한 값과 비교한 결과 거의 일치된 결과가 나타났다.

Mechanical behaviour between adjacent cracks in CFRP plate reinforced RC slabs

  • Yuan, Xin;Bai, Hongyu;Sun, Chen;Li, Qinqing;Song, Yanfeng
    • Structural Engineering and Mechanics
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    • 제84권3호
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    • pp.375-391
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    • 2022
  • This paper discussed and analyzed the interfacial stress distribution characteristic of adjacent cracks in Carbon Fiber Reinforced Polymer (CFRP) plate strengthened concrete slabs. One un-strengthened concrete test beam and four CFRP plate-strengthened concrete test beams were designed to carry out four-point flexural tests. The test data shows that the interfacial shear stress between the interface of CFRP plate and concrete can effectively reduce the crack shrinkage of the tensile concrete and reduces the width of crack. The maximum main crack flexural height in pure bending section of the strengthened specimen is smaller than that of the un-strengthened specimen, the CFRP plate improves the rigidity of specimens without brittle failure. The average ultimate bearing capacity of the CFRP-strengthened specimens was increased by 64.3% compared to that without CFRP-strengthen. This indicites that CFRP enhancement measures can effectively improve the ultimate bearing capacity and delay the occurrence of debonding damage. Based on the derivation of mechanical analysis model, the calculation formula of interfacial shear stress between adjacent cracks is proposed. The distributions characteristics of interfacial shear stress between certain crack widths were given. In the intermediate cracking region of pure bending sections, the length of the interfacial softening near the mid-span cracking position gradually increases as the load increases. The CFRP-concrete interface debonding capacity with the larger adjacent crack spacing is lower than that with the smaller adjacent crack spacing. The theoretical calculation results of interfacial bonding shear stress between adjacent cracks have good agreement with the experimental results. The interfacial debonding failure between adjacent cracks in the intermediate cracking region was mainly caused by the root of the main crack. The larger the spacing between adjacent cracks exists, the easier the interfacial debonding failure occurs.

Flexural behavior and flexural capacity prediction of precast prestressed composite beams

  • Hu, Manxin;Yang, Yong;Yu, Yunlong;Xue, Yicong
    • Structural Engineering and Mechanics
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    • 제84권2호
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    • pp.225-238
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    • 2022
  • In order to improve the cracking resistance of reinforced concrete and give full play to the advantages of prefabricated assembly structure in construction, prestressed reinforced concrete composite beam (PRCC) is proposed. Through the bending static test of seven I-shaped beam specimens, the bending failure modes and bearing capacity of PRCC and reinforced concrete composite beam are compared and analyzed, and the effects of prestress size, prestressed reinforcement layout and prestress application sequence on the flexural behavior of PRCC beams are studied. The results show that the cracking load and ultimate load of PRCC beams significantly increased after prestressing, and prestressed tendons can effectively control the crack development. With the increase of prestressing degree, the deformation resistance and bending stiffness of PRCC beams are increased. The application sequence of prestress has little influence on the mechanical properties of PRCC beams. The crack width, stiffness and normal section bearing capacity of PRCC beam are analyzed, and the calculated results are in good agreement with the experimental results.

TBM disc cutter ring type adaptability and rock-breaking efficiency: Numerical modeling and case study

  • Xiaokang Shao;Yusheng Jiang;Zongyuan Zhu;Zhiyong Yang;Zhenyong Wang;Jinguo Cheng;Quanwei Liu
    • Geomechanics and Engineering
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    • 제34권1호
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    • pp.103-113
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    • 2023
  • This study focused on understanding the relationship between the design of a tunnel boring machine disc cutter ring and its rock-breaking efficiency, as well as the applicable conditions of different cutter ring types. The discrete element method was used to establish a numerical model of the rock-breaking process using disc cutters with different ring types to reveal the development of rock damage cracks and variation in cutter penetration load. The calculation results indicate that a sharp-edged (V-shaped) disc cutter penetrates a rock mass to a given depth with the lowest load, resulting in more intermediate cracks and few lateral cracks, which leads to difficulty in crack combination. Furthermore, the poor wear resistance of a conventional V-shaped cutter can lead to an exponential increase in the penetration load after cutter ring wear. In contrast, constant-cross-section (CCS) disc cutters have the highest quantity of crack extensions after penetrating rock, but also require the highest penetration loads. An arch-edged (U-shaped) disc cutter is more moderate than the aforementioned types with sufficient intermediate and lateral crack propagation after cutting into rock under a suitable penetration load. Additionally, we found that the cutter ring wedge angle and edge width heavily influence cutter rock-breaking efficiency and that a disc cutter with a 16 to 22 mm edge width and 20° to 30° wedge angle exhibits high performance. Compared to V-shaped and U-shaped cutters, the CCS cutter is more suitable for soft or medium-strength rocks, where the penetration load is relatively small. Additionally, two typical case studies were selected to verify that replacing a CCS cutter with a U-shaped or optimized V-shaped disc cutter can increase cutting efficiency when encountering hard rocks.

부착특성과 균열거동을 고려한 철근콘크리트 구조물의 균열폭 계산 (Crack Width Calculation Based on Bond Characteristics and Cracking Behavior of Reinforced Concrete Structures)

  • 양준호;김우;이기열
    • 한국철도학회논문집
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    • 제12권6호
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    • pp.944-952
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    • 2009
  • 이 논문은 철근콘크리트 구조물의 균열폭 계산을 위한 해석적 모델을 제안한 것이다. 철근과 콘크리트 경계면에서 발생하는 실제와 유사한 형태의 부착응력-슬립 특성을 수치적으로 전개하기 위해서 수치해석을 통하여 균열안정화단계에서의 철근과 콘크리트 경계면에서 발생하는 슬립이 선형 분포함을 확인하고, CEB-FIP Model Code 1990과 Eurocode 2에서 제시하고 있는 부착응력-슬립 관계에 적용하였다. 이와 같은 방법을 통하여 균열과 균열 사이에서 철근의 매입길이 방향으로 발생하는 철근과 콘크리트의 변형률 차이가 균열면으로 누적되는 양을 계산할 수 있는 평형방정식을 유도하고, 이로부터 두 재료의 축방향 변형량의 차이로부터 균열폭을 계산할 수 있는 모델을 제안하였다. 이렇게 정식화된 새로운 균열폭 모델을 기존 문헌에 발표된 여러 연구자들의 실험 자료에 적용하여 그 정확성을 검증한 결과, 제안식에 의한 예측값은 현재 사용되고 있는 여러 설계기준의 균열폭 규정으로 계산한 결과에 비하여 실험값을 비교적 정확하게 예측하는 것으로 나타났다.

구속 건조수축을 고려한 PSC BOX 거더교 상부플랜지 균열폭 산정 (Calculation of Crack Width of the Top Flange of PSC Box Girder Bridge Considering Restraint Drying Shrinkage)

  • 구영호;한상묵
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권3호
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    • pp.30-37
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    • 2023
  • PSCB 거더교는 상하부 플랜지와 복부가 일체화된 폐합된 단면으로 일반적으로 거더와 바닥판이 분리된 교량과 구조적 특성이 상이하여 PSCB 거더교의 특성을 반영한 유지관리 방안이 필요하다. 고속도로 PSCB 거더교의 정밀안전진단 보고서를 수집하여 손상 유형을 분석한 결과, 공용 중 발생되는 열화·손상은 대부분 상부플랜지에 집중되어 있다. 특히 상부플랜지 하면의 교축방향 균열은 분석대상 PSCB 거더교의 약 70 %에서 발생되었고, 이는 외부하중에 의한 구조적 균열 보다 수화열, 건조수축 등 간접하중에 의한 균열로 판단된다. 공용중인 PSCB 거더교의 내구성 향상 및 유지관리 비용 절감 등을 위해서는 설계단계부터 구속 건조수축 균열의 제어가 필요하다. 따라서 본 논문에서는 PSCB 거더교 상부플랜지 하면 균열의 주요 원인인 구속 상태에서의 건조수축으로 인하여 발생되는 균열에 대하여 Gilbert Model을 이용하여 직접 계산하고, 철근량, 철근직경 및 간격 등 영향인자를 분석하였다. 분석결과, 간접하중으로 인하여 발생되는 균열폭은 H16 철근 기준 철근비 0.01 이하, 철근비 0.01 기준 H19보다 직경이 큰 철근의 경우 허용 균열폭 0.2 mm를 초과하는 것으로 나타났으며, 최종적으로 균열폭 검토 결과를 바탕으로 PSCB 거더교 상부플랜지의 균열폭 제어 방안을 제안하였다.

Effective width of steel-concrete composite beams under negative moments in service stages

  • Zhu, Li;Ma, Qi;Yan, Wu-Tong;Han, Bing;Liu, Wei
    • Steel and Composite Structures
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    • 제38권4호
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    • pp.415-430
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    • 2021
  • The effective flange width was usually introduced into elementary beam theory to consider the shear lag effect in steel-concrete composite beams. Previous studies have primarily focused on the effective width under positive moments and elastic loading, whereas it is still not clear for negative moment cases in the normal service stages. To account for this problem, this paper proposed simplified formulas for the effective flange width and reinforcement stress of composite beams under negative moments in service stages. First, a 10-degree-of-freedom (DOF) fiber beam element considering the shear lag effect and interfacial slip effect was proposed, and a computational procedure was developed in the OpenSees software. The accuracy and applicability of the proposed model were verified through comparisons with experimental results. Second, a method was proposed for determining the effective width of composite beams under negative moments based on reinforcement stress. Employing the proposed model, the simplified formulas were proposed via numerical fitting for cases under uniform loading and centralized loading at the mid-span. Finally, based on the proposed formulas, a simplified calculation method for the reinforcement stress in service stages was established. Comparisons were made between the proposed formulas and design code. The results showed that the design code method greatly underestimated the contribution of concrete under negative moments, leading to notable overestimations in the reinforcement stress and crack width.

Bending performance and calculation of reinforced beam with hybrid fiber and CaCO3 whisker

  • Li Li;Yapeng Qin;Mingli Cao;Junfeng Guan;Chaopeng Xie
    • Computers and Concrete
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    • 제31권3호
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    • pp.197-206
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    • 2023
  • In this paper, the bending performance of a MSFRHPC (containing steel fiber, polyvinyl alcohol (PVA) fiber, and CW)-reinforced beam was studied for the first time. Introducing a multiscale fiber system increased the first crack load (up to 150%), yield load (up to 50%), and peak load (up to 15%) of reinforced beams. The multiscale fiber system delays cracking of the reinforced beam, reduces crack width of the reinforced beam in normal use, and improves the durability of the beam. Considering yield load and peak load, the reinforcing effect of multiscale fiber on the high-reinforcement ratio beam (1.00%) is better than that on the low-reinforcement ratio beam (0.57%). Introducing fibers slowed the development of cracks in the reinforced beam under bending. With the added hybrid fiber, the deformation concentration of reinforced beams after yield was more significant with concentration in 1 or 2 cracks. A model for predicting the flexural capacity of MSFRHPC-reinforced beams was proposed, considering the action of multiscale hybrid fibers. This research is helpful for structure application of MSFRHPC-containing CW.