• 제목/요약/키워드: FRP strengthening

검색결과 276건 처리시간 0.019초

섬유판보강공법에서 휨설계식에 대한 연구 (Flexural Design of Externally Bonded FRP Systems for Strengthening Concrete Structures)

  • 서정국;임종범;최완철
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 가을 학술발표회 논문집
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    • pp.463-468
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    • 2002
  • For the Externally bonded FRP systems, flexural design method is studied focusing on the reinforcement layer of the carbon fiber sheets. As the FRP layer is added, strengthening rate increases, but not proportionally as the FRP layer increases. This is reflected in the design formula appropriately by the bond cofficients from the added layers. As the number of FRP layer increases, the stress reinforcement and FRP sheet decreases, and it generally corresponds to the decrease rate of member flexural strength. This phenomenon is appearing indentically in a design formula and experimental result. The rate of $M_{test}$ and $M_n$ is 1.19 and it is estimated as safety factor which is the reduction factor, ${\psi}_f = 0.85$.

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섬유복합재료(FRP)의 건설 적용 사례 연구 (건축편) (Application Technologies of Fiber Reinforced Composites on the Building Structure)

  • 한복규;권영진;박성우;홍건호
    • Composites Research
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    • 제19권3호
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    • pp.37-42
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    • 2006
  • In the past, the technology of strengthening structures using FRP composites was still in its infancy, with very few publications on the technology available. However, recently strengthening of Reinforced concrete (RC) and other structures using advanced fibre-reinforced polymer/plastic(FRP) composites has become very popular in the last few years. As the well-known advantages of FRP composites including both good corrosion resistence and ease for site handling due to their light weight, also its design methods have been ensured the safe and economic use of this new technology, FRPs have been used widely and demonstrated in the field of aero industries etc. The purpose of this paper is to report the examples of the many diverse applications of Fiber Reinforced Plastic in construction materials of structures.

Experimental-numerical study on the FRP-strengthened reinforced concrete beams with a web opening

  • Abdullah Rafiq Safiaa;Suryamani Behera;Rimen Jamatia;Rajesh Kumar;Subhajit Mondal
    • Advances in concrete construction
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    • 제15권5호
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    • pp.321-331
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    • 2023
  • The effect of fibre-reinforced polymer (FRP) strengthening on the behaviour of reinforced concrete (RC) beams with web openings is studied. It has been observed that the load-carrying capacity and deflection in the presence of an opening reduced by approximately 50% and 75%, respectively. Three-dimensional nonlinear finite models are first validated with the results obtained from experimental data. Thereafter, a series of parametric studies are conducted for the beam with an opening. In the study, it is observed that a square opening shape is critical in comparison to the elliptical and circular-shaped opening. The web opening located near the support is found to be critically compared to the opening in the middle of the beam. Given the critical opening shape situated at the critical location, the increase in FRP layers enhances the load-deformation behaviour of the FRP-wrapped RC beam. However, the load-deformation responses are not significantly improved beyond a certain threshold value of FRP layers.

분사식 FRP공법을 이용한 구조물 보강 성능평가 (Performance Evaluation of Structure Strengthening Using Sprayed FRP Technique)

  • 장준호;장광석
    • 한국구조물진단유지관리공학회 논문집
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    • 제13권4호통권56호
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    • pp.126-136
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    • 2009
  • 분사식 FRP 보강 공법은 섬유(Fiber)와 수지(Resin)를 외부에서 혼합하여 요철이 많은 콘크리트 표면에 고속의 압축 공기로 랜덤하게 분사하여 기존 콘크리트 구조물을 보강하는 공법이다. 새로운 분사식 FRP 공법을 이용하여 구조물의 보강 성능을 평가하였다. 콘크리트 보 실험체에 대한 휨강도 실험을 수행하여 분사식 FRP의 최적물성치를 찾고 이 결과를 이용하여 PSC I형 거더 표준단면을 1/5로 축소한 구조물에 적용하여 실험을 하였다. 손상된 프리스트레스트 콘크리트에 적용한 결과 무보강보에 비하여 휨강도가 49.8% 증가하였고 사용상태의 거동이 개선되었으며, 보강에 의해 처짐 및 균열 제어에 효과적이었다. 결론적으로 분사식 FRP 공법의 보강 적용은 구조물의 성능 향상에 효과적이라고 할 수 있다.

GSP와 CFRP 쉬트의 표면부착공법을 이용한 RC 슬래브의 보강성능 평가에 관한 실험적 연구 (An Experimental Study on Strengthening Performance of RC Slab used of Surface Bonded Method of GSP and CFRP Sheet)

  • 안기만;김광수;박선규;이영재
    • 한국구조물진단유지관리공학회 논문집
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    • 제11권6호
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    • pp.95-102
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    • 2007
  • 교량의 노후화와 교통량의 증가로 성능개선이 요구되어 질 경우, 경제적인 측면에서 신축 보다는 보수 보강을 통한 성능개선이 보다 바람직한 유지관리이다. 많은 보강공법중 시공방법의 편리와 빠른 시공기간으로 교량의 성능향상을 위해 FRP 재료를 이용한 표면부착공법이 많이 이용되고 있다. 특히, FRP 재료는 철근보다 경량이고 인장강도는 약 10배정도 우수한 재료이다. 이를 이용한 보강성능을 평가하기 위하여 CFRP 쉬트와 GSP를 이용하여 실험을 수행하였다.

Analytical and numerical studies on hollow core slabs strengthened with hybrid FRP and overlay techniques

  • Kankeri, Pradeep;Prakash, S. Suriya;Pachalla, Sameer Kumar Sarma
    • Structural Engineering and Mechanics
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    • 제65권5호
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    • pp.535-546
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    • 2018
  • The objective of this study is to understand the behaviour of hollow core slabs strengthened with FRP and hybrid techniques through numerical and analytical studies. Different strengthening techniques considered in this study are (i) External Bonding (EB) of Carbon Fiber Reinforced Polymer (CFRP) laminates, (ii) Near Surface Mounting (NSM) of CFRP laminates, (iii) Bonded Overlay (BO) using concrete layer, and (iv) hybrid strengthening which is a combination of bonded overlay and NSM or EB. In the numerical studies, three-dimensional Finite Element (FE) models of hollow core slabs were developed considering material and geometrical nonlinearities, and a phased nonlinear analysis was carried out. The analytical calculations were carried out using Response-2000 program which is based on Modified Compression Field Theory (MCFT). Both the numerical and analytical models predicted the behaviour in agreement with experimental results. Parametric studies indicated that increase in the bonded overlay thickness increases the peak load capacity without reducing the displacement ductility. The increase in FRP strengthening ratio increased the capacity but reduced the displacement ductility. The hybrid strengthening technique was found to increase the capacity of the hollow core slabs by more than 100% without compromise in ductility when compared to their individual strengthening schemes.

Finite element simulation for steel tubular members strengthened with FRP under compression

  • El-Kholy, Ahmed M.;Mourad, Sherif A.;Shaheen, Ayman A.;Mohamed, Yomna A.
    • Structural Engineering and Mechanics
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    • 제72권5호
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    • pp.569-583
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    • 2019
  • Tubular steel sections are widespread all over the world because of their strength and aesthetic appearance. Tubular steel members may exhibit local buckling such as elephant foot or overall buckling under extreme compression load. Recently, external bonding of fiber reinforced polymers (FRP) sheets for strengthening these members has been explored through experimental research. This paper presents three-dimensional nonlinear finite element analysis (FEA) to investigate the structural behavior of strengthening tubular steel members with FRP against local and overall buckling phenomena. Out-of-roundness and out-of-straightness imperfections were introduced to the numerical models to simulate the elephant foot and overall buckling, respectively. The nonlinear analysis preferences such as the integration scheme of the shell elements, the algorithm for solution of nonlinear equations, the loading procedure, the bisection limits for the load increments, and the convergence criteria were set, appropriately enough, to successfully track the sophisticated buckling deformations. The agreement between the results of both the presented FEA and the experimental research was evident. The FEA results demonstrated the power of the presented rigorous FEA in monitoring the plastic strain distribution and the buckling phenomena (initiation and propagation). Consequently, the buckling process was interpreted for each mode (elephant foot and overall) into three sequential stages. Furthermore, the influence of FRP layers on the nonlinear analysis preferences and the results was presented.

Finite element modeling methodologies for FRP strengthened RC members

  • Park, Sangdon;Aboutaha, Riyad
    • Computers and Concrete
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    • 제2권5호
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    • pp.389-409
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    • 2005
  • The Finite Element Analysis (FEA) is evidently a powerful tool for the analysis of structural concrete having nonlinearity and brittle failure properties. However, the result of FEA of structural concrete is sensitive to two modeling factors: the shear transfer coefficient (STC) for an open concrete crack and force convergence tolerance value (CONVTOL). Very limited work has been done to find the optimal FE Modeling (FEM) methodologies for structural concrete members strengthened with externally bonded FRP sheets. A total of 22 experimental deep beams with or without FRP flexure or/and shear strengthening systems are analyzed by nonlinear FEA using ANAYS program. For each experimental beams, an FE model with a total of 16 cases of modeling factor combinations are developed and analyzed to find the optimal FEM methodology. Two elements the SHELL63 and SOLID46 representing the material properties of FRP laminate are investigated and compared. The results of this research suggest that the optimal combination of modeling factor is STC of 0.25 and CONVTOL of 0.2. A SOLID 46 element representing the FRP strengthening system leads to better results than a SHELL 63 element does.

외부긴장 보강을 위한 CFRP 판의 정착부 거동 실험 (Experimental Study on the Behaviore of Anchorage for Externally Prestressed CFRP Laminate)

  • 유영준;박종섭;박영환;정우태;강재윤
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 추계 학술발표회 제16권2호
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    • pp.17-20
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    • 2004
  • FRP strengthening system that bonds FRP sheet or laminate underneath structure has been used popularly thesedays. The failure of this bonding system occurs mainly at the interface of bonded surface abruptly. So it is difficult to expect the failure and FRP can't show its full material capacity that makes it uneconomically. By that reason, KICT proposed a system to install FRP aminate to structure for strengthening not by bondging but by unbonding. It is to install both ends of FRP laminate by anchoring underneath structure without bonding. Then, the failure is not an interfacial problem any more, it is governed by mechanical anchoring. This paper includes an experimental study about anchoring system for prestressing CFRP laminate.

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