• 제목/요약/키워드: CFRP debonding

검색결과 85건 처리시간 0.019초

Carbon FRP Grid로 휨 보강한 철근콘크리트 슬래브의 파괴형태와 설계기준 (Failure Mode and Design Guideline for Reinforced Concrete Slab Strengthened Using Carbon FRP Grid)

  • 박상렬;최현
    • 콘크리트학회논문집
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    • 제16권5호
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    • pp.667-675
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    • 2004
  • 본 논문은 CFRP 격자 보강재로 보강한 콘크리트 슬래브의 파괴형태와 보강설계기준에 대한 연구이다. 실험 연구에서 채택한 시험변수로는 CFRP 격자 보강재의 양, 보강 모르타르의 깊이, 앵커핀의 유무, 압축부 보강 등이다. 연구에 의하면 CFRP 격자 섬유 보강량에 따라 파괴형태가 다르게 나타났는데 낮은 보강수준에서는 FRP 격자의 인장 파단파괴를 보였고 보통의 보강정도에서는 격자층 계면전단파괴가 발생하였다. 높은 보강량을 가진 슬래브에서는 사인장전단파괴 형태를 나타냈다. 보강 효과는 FRP 격자 보강재의 양이 증가할수록 증대하였으나 취성 전단파괴에 의해 연성은 감소되었다. 따라서 FRP 격자 보강량을 제한함으로써 갑자기 하중 지지력을 상실하는 전단파괴를 피할 수 있다. 파괴형태 중 CFRP 파단파괴가 바람직한데 그 이유는 섬유파단 후에도 극한상태에서 보강 전 슬래브의 하중지지력과 연성을 가지고 있기 때문이다. 마지막으로 본 논문은 CFRP 격자섬유보강설계기준과 과정을 제시하고 있다.

탄소섬유판 (CFRP Strip)으로 보강된 철근콘크리트 부재의 전단거동 (Shear Behavior of Reinforced Concrete Beams Strengthened with CFRP Strips)

  • 임동환;남민희
    • 콘크리트학회논문집
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    • 제20권3호
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    • pp.299-305
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    • 2008
  • 본 연구는 탄소섬유판으로 보강된 철근콘크리트 부재의 전단거동 특성 및 파괴형상을 구명함에 그 목적이 있다. 이를 위하여 탄소섬유판의 형상, 섬유판 부착 간격 및 전단보강 철근량 등의 변수를 포함하는 실험 연구가 수행되었다. 본 실험 결과 탄소섬유판으로 보강된 철근콘크리트 부재의 전단 강성은 보강되지 않은 보에 비해 현저하게 개선되며 최대 전단강도 증진율은 100% 이상인 것으로 나타났다. 또한 탄소섬유판은 전단균열의 발생 및 진전을 억제하며, 적은 량의 탄소섬유판으로 보강했을 경우에도 전단강도의 증진 효과는 매우 좋은 것으로 나타났다. 본 연구에서는 탄소섬유판에 발생하는 변형률을 기본으로 하여 유효응력을 도출하였으며, 탄소섬유판으로 보강된 철근콘크리트 부재의 전단강도를 계산하였다. 이는 실험 결과와 잘 일치하는 것으로 나타났다.

Stereo-digital image correlation in the behavior investigation of CFRP-steel composite members

  • Dai, Yun-Tong;Wang, Hai-Tao;Ge, Tian-Yuan;Wu, Gang;Wan, Jian-Xiao;Cao, Shuang-Yin;Yang, Fu-Jun;He, Xiao-Yuan
    • Steel and Composite Structures
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    • 제23권6호
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    • pp.727-736
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    • 2017
  • The application of carbon fiber reinforced polymer (CFRP) in steel structures primarily includes two categories, i.e., the bond-critical application and the contact-critical application. Debonding failure and buckling failure are the main failure modes for these two applications. Conventional electrometric techniques may not provide precise results because of the limitations associated with single-point contact measurements. A nondestructive full-field measurement technique is a valuable alternative to conventional methods. In this study, the digital image correlation (DIC) technique was adopted to investigate the bond behavior and buckling behavior of CFRP-steel composite members. The CFRP-to-steel bonded joint and the CFRP-strengthened square hollow section (SHS) steel column were tested to verify the suitability of the DIC technique. The stereo-DIC technique was utilized to measure continuous deformation. The bond-slip relationship of the CFRP-to-steel interface was derived using the DIC data. Additionally, a multi-camera DIC system consisting of four stereo-DIC subsystems was proposed and applied to the compressive test of CFRP-strengthened SHS steel column. The precise buckling location and CFRP delamination of the CFRP-strengthened SHS steel column were identified. The experimental results confirm that the stereo-DIC technique can provide effective measurements for investigating the behaviors of CFRP-steel composite members.

Shear-strengthening of RC continuous T-beams with spliced CFRP U-strips around bars against flange top

  • Zhou, Chaoyang;Ren, Da;Cheng, Xiaonian
    • Structural Engineering and Mechanics
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    • 제64권1호
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    • pp.135-143
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    • 2017
  • To upgrade shear performance of reinforced concrete (RC) beams, and particularly of the segments under negative moment within continuous T-section beams, a series of original schemes has been proposed using carbon fibre-reinforced polymer (CFRP) U-shaped strips for shear-strengthening. The current work focuses on one of them, in which CFRP U-strips are wound around steel bars against the top of the flange of a T-beam and then spliced on its bottom face in addition to being bonded onto its sides. The test results showed that the proposed scheme successfully provided reliable anchorage for U-strips and prevented premature onset of shear failure due to FRP debonding. The governing shear mode of failure changed from peeling of CFRP to its fracture or crushing of concrete. The strengthened specimens displayed an average increase of about 60% in shear capacity over the unstrengthened control one. The specimen with a relatively high ratio and uniform distribution of CFRP reinforcement had a maximum increase of nearly 75% in strength as well as significantly improved ductility. The formulas by various codes or guidelines exhibited different accuracy in estimating FRP contribution to shear resistance of the segments that are subjected to negative moment and strengthened with well-anchored FRP U-strips within continuous T-beams. Further investigation is necessary to find a suitable approach to predicting load-carrying capacity of continuous beams shear strengthened in this way.

Identification of failure mechanisms for CFRP-confined circular concrete-filled steel tubular columns through acoustic emission signals

  • Li, Dongsheng;Du, Fangzhu;Chen, Zhi;Wang, Yanlei
    • Smart Structures and Systems
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    • 제18권3호
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    • pp.525-540
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    • 2016
  • The CFRP-confined circular concrete-filled steel tubular column is composed of concrete, steel, and CFRP. Its failure mechanics are complex. The most important difficulties are lack of an available method to establish a relationship between a specific damage mechanism and its acoustic emission (AE) characteristic parameter. In this study, AE technique was used to monitor the evolution of damage in CFRP-confined circular concrete-filled steel tubular columns. A fuzzy c-means method was developed to determine the relationship between the AE signal and failure mechanisms. Cluster analysis results indicate that the main AE sources include five types: matrix cracking, debonding, fiber fracture, steel buckling, and concrete crushing. This technology can not only totally separate five types of damage sources, but also make it easier to judge the damage evolution process. Furthermore, typical damage waveforms were analyzed through wavelet analysis based on the cluster results, and the damage modes were determined according to the frequency distribution of AE signals.

Numerical approach to fracture behavior of CFRP/concrete bonded interfaces

  • Lin, Hai X.;Lu, Jian Y.;Xu, Bing
    • Computers and Concrete
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    • 제20권3호
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    • pp.291-295
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    • 2017
  • Tests on the fracture behavior of CFRP-concrete composite bonded interfaces have been extensively carried out. In this study, a progressive damage model is employed to simulate the fracture behaviors. The crack nucleation, propagation and more other details can be captured by these models. The numerical results indicate the fracture patterns seem to depend on the relative magnitudes of the interface cohesive strength and concrete tensile strength. The fracture pattern transits from the predominated adhesive-concrete interface debonding to the dominated concrete cohesive cracking as the interface cohesive strength changes from lower than concrete tensile strength to higher than that. The numerical results have an agreement with the experimental results.

탄소섬유판으로 보강된 RC부재의 부착길이 변화에 따른 파괴모드 및 휨 보강성능 (Failure Mode and Flexural Performance of RC Beams Strengthened with Different Bond Length of CFRP Strips)

  • 최기선;유영찬;김긍환
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2006년도 추계 학술발표회 논문집
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    • pp.173-176
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    • 2006
  • The one of the commonly reported failure mode of the RC beam strengthened with FRP was caused by the separation of the concrete cover, so called delamination. Therefore, ACI440 recommended that concrete cover delamination can be prevented in strengthened beams if bond length of FRP composite be exteneded over a point of cracking moment. In this study, the failure mode and the flexural performance of RC beam with different bond length of FRP are estimated. Each bonded length is calculated based on the point of cracking moment with addition or subtraction of specific length(=150mm). The results of this study show that mid-span debonding occurs in the specimen strengthened with CFRP strips which are bonded over the point of cracking moment, while concrete cover deliamination occurs at the termination point of CFRP in the specimen with less bonded length than the point of cracking moment region.

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Debonding failure analysis of FRP-retrofitted concrete panel under blast loading

  • Kim, Ho Jin;Yi, Na Hyun;Kim, Sung Bae;Nam, Jin Won;Ha, Ju Hyung;Kim, Jang-Ho Jay
    • Structural Engineering and Mechanics
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    • 제38권4호
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    • pp.479-501
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    • 2011
  • Even though fiber reinforced polymer (FRP) has been widely used as a retrofitting material, the FRP behavior and effect in FRP retrofitted structure under blast loading, impulsive loading with instantaneous time duration, has not been accurately examined. The past studies have focused on the performance of FRP retrofitted structures by making simplifications in modeling, without incorporating accurate failure mechanisms of FRP. Therefore, it is critical to establish an analytical model that can properly consider the specific features of FRP material in evaluating the response of retrofitted concrete structures under blast loading. In this study, debonding failure analysis technique for FRP retrofitted concrete structure under blast loading is suggested by considering FRP material characteristics and debonding failure mechanisms as well as rate dependent failure mechanism based on a blast resisting design concept. In addition, blast simulation of FRP retrofitted RC panel is performed to validate the proposed model and analysis method. For validation of the proposed model and analysis method, the reported experimental results are compared with the debonding failure analysis results. From the comparative verification, it is confirmed that the proposed analytical model considering debonding failure of FRP is able to reasonably predict the behavior of FRP retrofitted concrete panel under blast loading.

Recognition of damage pattern and evolution in CFRP cable with a novel bonding anchorage by acoustic emission

  • Wu, Jingyu;Lan, Chengming;Xian, Guijun;Li, Hui
    • Smart Structures and Systems
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    • 제21권4호
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    • pp.421-433
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    • 2018
  • Carbon fiber reinforced polymer (CFRP) cable has good mechanical properties and corrosion resistance. However, the anchorage of CFRP cable is a big issue due to the anisotropic property of CFRP material. In this article, a high-efficient bonding anchorage with novel configuration is developed for CFRP cables. The acoustic emission (AE) technique is employed to evaluate the performance of anchorage in the fatigue test and post-fatigue ultimate bearing capacity test. The obtained AE signals are analyzed by using a combination of unsupervised K-means clustering and supervised K-nearest neighbor classification (K-NN) for quantifying the performance of the anchorage and damage evolutions. An AE feature vector (including both frequency and energy characteristics of AE signal) for clustering analysis is proposed and the under-sampling approaches are employed to regress the influence of the imbalanced classes distribution in AE dataset for improving clustering quality. The results indicate that four classes exist in AE dataset, which correspond to the shear deformation of potting compound, matrix cracking, fiber-matrix debonding and fiber fracture in CFRP bars. The AE intensity released by the deformation of potting compound is very slight during the whole loading process and no obvious premature damage observed in CFRP bars aroused by anchorage effect at relative low stress level, indicating the anchorage configuration in this study is reliable.

CFRP 시트로 부분 휨 보강된 철근콘크리트 보의 유한요소해석 (FEA for RC Beams Partially Flexural Reinforced with CFRP Sheets)

  • 김건수;박기태;김병철;김재환;정규산
    • 한국구조물진단유지관리공학회 논문집
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    • 제24권5호
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    • pp.9-16
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    • 2020
  • CFRP 시트를 이용한 RC 구조물의 보강은 다양한 방법으로 적용되어 왔으며, 관련 연구도 오랜 기간 수행되어 왔다. 하지만 CFRP 보강에 대한 연구는 대부분 실험적으로 수행되어, 다양한 변수 효과를 효율적으로 분석하기에는 한계가 있었다. 본 연구에서는 CFRP 시트로 보강된 RC 보의 구조거동을 ABAQUS 프로그램을 이용하여 수치해석적으로 분석하였다. RC 보 하면과 시트 사이에 Cohesive 요소를 적용하여 CFRP 보강 RC 보의 주요 파괴모드인 CFRP 시트 탈락을 모사하였다. CFRP 시트 탈락에 의한 급격한 비선형 문제 및 효율적인 유한요소해석을 위하여 준정적 해석 기법과 2 차원 대칭 모델을 사용하였다. 본 연구에서 수행한 유한요소해석 결과는 기존 실험결과를 잘 반영하는 것을 확인하였으며, CFRP 보강 수준과 최대 강도, 초기 강성, 파괴시점의 관계를 분석하였다. 총 31개 모델에 대한 유한요소해석을 수행한 결과 보강 수준의 증가에 따라 최대 강도 및 초기 강성이 sin 함수 형태로 증가하는 것을 확인하였다. 또한 과도한 CFRP 시트 보강은 파괴시점을 앞당겨 보강 구조물의 취성파괴를 야기할 수 있음을 확인하였으며, 이를 방지하기 위한 적절한 수준의 CFRP 시트 보강 설계가 필요할 것으로 판단된다.