• 제목/요약/키워드: strengthening length

검색결과 186건 처리시간 0.025초

탄소섬유 보강재로 표면매립공법에 의해 보강된 콘크리트 보의 보강성능 연구 (A Study for strengthening Capacity of concrete Beam Strengthened with Near-Surface Mounted Carbon Fiber Reinforced Polymer)

  • 오홍섭;심종성;주민관;권영락
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2006년도 추계 학술발표회 논문집
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    • pp.145-148
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    • 2006
  • Near surface mounted (NSM) is a recent strengthening technique based on bonding fiber reinforced polymer (CFRP) bars (rods and laminate strips), the use of NSM FRP bars is Emerging as a promising technology for increasing flexural strength of deficient concrete. In order for this technique to perform effectively, the structural behaviour of RC element strengthened with NSM FRP bars to be fully characterized. Totally, 10 beams were tested using symmetrical two-point loads test. The parameters examined under the beam test were a diffrent type of strengthening length.

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Strengthening of deficient steel SHS columns under axial compressive loads using CFRP

  • Shahraki, Mehdi;Sohrabi, Mohammad Reza;Azizyan, Gholamreza;Narmashiri, Kambiz
    • Steel and Composite Structures
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    • 제30권1호
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    • pp.69-79
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    • 2019
  • Numerous problems have always vexed engineers with buckling, corrosion, bending, and over-loading in damaged steel structures. The present study aims to study the possible effects of Carbon Fiber Reinforced Polymer (CFRP) for strengthening deficient Steel Square Hollow Section (SHS) columns. To this end, the effects of axial loading, stiffness values, axial displacement, the shape of deficient on the length of steel SHS columns were evaluated based on a detailed parametric study. Ten specimens were tested to failure under axial compression in laboratory and simulated by using Finite Element (FE) analysis based on numerical approach. The results indicated that the application of CFRP sheets resulted in reducing stress in the damage location and preventing or retarding local deformation around the deficiency location appropriately. In addition, the retrofitting method could increase loading the carrying capacity of specimens.

Torsional strengthening of RC beams using stainless steel wire mesh -Experimental and numerical study

  • Patel, Paresh V.;Raiyani, Sunil D.;Shah, Paurin J.
    • Structural Engineering and Mechanics
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    • 제67권4호
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    • pp.391-401
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    • 2018
  • Locally available Stainless Steel Wire Mesh (SSWM) bonded on a concrete surface with an epoxy resin is explored as an alternative method for the torsional strengthening of Reinforced Concrete (RC) beam in the present study. An experiment is conducted to understand the behavior of RC beams strengthened with a different configuration of SSWM wrapping subjected to pure torsion. The experimental investigation comprises of testing fourteen RC beams with cross section of $150mm{\times}150mm$ and length 1300 mm. The beams are reinforced with 4-10 mm diameter longitudinal bars and 2 leg-8 mm diameter stirrups at 150 mm c/c. Two beams without SSWM strengthening are used as control specimens and twelve beams are externally strengthened by six different SSWM wrapping configurations. The torsional moment and twist at first crack and at an ultimate stage as well as torque-twist behavior of SSWM strengthened specimens are compared with control specimens. Also the failure modes of the beams are observed. The rectangular beams strengthened with corner and diagonal strip wrapping configuration exhibited better enhancement in torsional capacity compared to other wrapping configurations. The numerical simulation of SSWM strengthened RC beam under pure torsion is carried out using finite element based software ABAQUS. Results of nonlinear finite element analysis are found in good agreement with experimental results.

Axial behavior of RC columns strengthened with SCC filled square steel tubes

  • Lu, Yi-Yan;Liang, Hong-Jun;Li, Shan;Li, Na
    • Steel and Composite Structures
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    • 제18권3호
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    • pp.623-639
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    • 2015
  • Self-compacting Concrete (SCC) Filled Square steel Tubes (SCFST) was used to strengthen square RC columns. To establish the efficiency of this strengthening method, 17 columns were tested under axial compression loading including 3 RC columns without any strengthening (WRC), 1 RC column strengthened with concrete jacket (CRC), 13 RC columns strengthened with self-compacting concrete filled square steel tubes (SRC). The experimental results showed that the use of SCFST is interesting since the ductility and the bearing capacity of the RC columns are greatly improved. The improvement ratio is significantly affected by the nominal wall thickness of steel tubes (t), the strength grade of strengthening concrete (C), and the length-to-width ratio (L / B) of the specimens. In order to quantitatively analyze the effect of these test parameters on axial loading behavior of the SRC columns, three performance indices, enhancement ratio (ER), ductility index (DI), and confinement ratio (CR), were used. The strength of the SRC columns obtained from the experiments was then employed to verify the proposed mode referring to the relevant codes. It was found that codes DBJ13-51 could relatively predict the strength of the SRC columns accurately, and codes AIJ and BS5400 were relatively conservative.

Sprayed FRP로 보강된 철근콘크리트 보의 보강성능에 관한 연구 (Structural Performance of Reinforced Concrete Beams Strengthened with Sprayed Fiber Reinforced Polymers)

  • 이강석;손영선;이문성
    • 콘크리트학회논문집
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    • 제19권4호
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    • pp.421-431
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    • 2007
  • 본 연구의 주 목적은 유리 및 탄소단섬유 (chopped fiber)와 에폭시 및 비닐에스터수지 (resin)를 외기에서 혼합하여 요철이 많은 콘크리트 표면에 고속의 압찰 공기로 랜덤하게 분사하여 기존 콘크리트 구조물을 보강하는 새로운 공법, 즉 sprayed FRP 보수보강 공법을 개발하는 것으로서, 본 연구에서는 sprayed FRP 보강을 위한 치적의 재료 물성치를 제시하고자 유리 및 탄소단섬유의 길이, 단섬유와 에폭시 및 비닐에스터수지의 배합 비율 등을 주요변수로 설정하여 재료 인장시험을 실시하였다. 또한 상기 재료 시험 결과를 바탕으로 sprayed FRP 공법을 이용하여 보강된 철근콘크리트 휨 보, 전단 보 및 손상 보의 보강 성능을 실험적 연구를 토대로 평가하였다. 그 결과, 유리 및 탄소단섬유의 길이 38 mm, 섬유와 수지의 배합 비율 1 : 2가 최적 물성치로 제안되었으며, sprayed FRP의 휨 및 전단 보의 보강 효과는 기존 FRP sheet와 유사한 보강 효과를 나타냈으며, 손상 보의 경우 최대 강도의 결과를 비교해보면 보강 보와 동등한 보강 효과가 나타났다. 기존 FRP 설계식의 적용 가능성을 분석해본 결과, sprayed FRP 휨실험체의 경우 기존설계식의 적용이 가능한 것으로 드러났으며, 전단실험체의 경우는 전단강도 저감계수 ${\alpha}=0.18$이 실험값과 근접한 범위 내에서 안전 측으로 설계가 되는 것으로 사료된다.

분사식 FRP에 의한 구조물의 보강 성능 및 반발률 평가 (Evaluation on Strengthening Capacities and Rebound Rate of Structures with Sprayed FRP)

  • 한승철;양준모;윤영수
    • 한국구조물진단유지관리공학회 논문집
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    • 제12권1호
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    • pp.193-202
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    • 2008
  • 본 논문은 분사식 FRP의 압축 구속효과와 휨 보강 효과 및 분사식 FRP의 반발률에 대한 실험적 연구이다. 분사식 FRP란 레진과 짧게 잘려진 섬유를 고압의 공기에 의해 적용면에 분사하여 보강하는 기법이다. 분사식 FRP의 구속 및 휨 보강 효과를 알아보기 위하여 원주형 공시체와 휨 공시체를 제작하여 FRP를 분사하여 보강하였고, 보강 재료로 유리섬유와 폴리에스테르 수지를 사용하였다. 최적의 보강 조건을 알기 위해 섬유 길이, 보강 두께, 섬유 혼입비, 콘크리트 강도에 따른 실험을 실시하였고, 분사식 FRP 보강법을 섬유 매트에 의한 보강법과 비교하였다. 또한, 분사식 FRP의 반발률 역시 평가하였다. 실험을 통하여 분사식 FRP의 최적 조건을 결정하였다. 본 연구의 분사식 FRP 보강은 유리 섬유 매트에 의한 보강법 이상의 성능을 발휘하였다.

Strengthening of concrete structures with buckling braces and buckling restrained braces

  • Mazloom, Moosa;Pourhaji, Pardis;Farash, Abbas Moosa;Sanati, Amir Hossein
    • Structural Monitoring and Maintenance
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    • 제5권3호
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    • pp.391-416
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    • 2018
  • The purpose of this article is to strengthen concrete structures using buckling and non-buckling braces. Connection plates are modeled in three shapes including the effect of 1.5t hinge zone length, 2t one and without the zone (1.5t-CP, 2t-CP and WCP). According to the verification performed with ABAQUS software, the connection plates which are superior in ductility and strengthening are found. The results show adding steel braces in concrete moment frames increase the strength and stiffness of the structures up to about 12 and 3 times, respectively. The frame strength increased about 21 and 25 percent with considering the effect of 2t hinge length in connection plates compared to 1.5t-CPs and WCPs. Also the ductility of retrofitted frames with 2t-CP improved 2.06 times more than WCP ones. Thus, 2t-CP sample is the best choice for connecting steel braces to concrete moment frames for retrofitting them. Afterwards, optimum conditions for elemental coating in braces with no buckling are assessed. The length of concrete coatings could be reduced about 30 percent, and buckling did not occur. Therefore, the weight of restraining coating decreased, and its performance improved. It is worth noting that BRBs could be constructed with only steel materials, which have outer steel tubes too. In fact, only the square cross sections of the tube profiles are appropriate for removing the filler concrete, and the rectangular ones are prone to buckle around their weak axis.

Effective Bond Length of FRP Sheets Externally Bonded to Concrete

  • Ben Ouezdou, Mongi;Belarbi, Abdeldjelil;Bae, Sang-Wook
    • International Journal of Concrete Structures and Materials
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    • 제3권2호
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    • pp.127-131
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    • 2009
  • Strengthening and repair of concrete structures using externally bonded fiber reinforced polymer (FRP) composite sheets has been popular around the world during the last two decades. However, premature failure due to debonding of the FRP is one of the important issues still to be resolved. Numerous research studies have dealt with the debonding problem in terms of Effective Bond Length (EBL), however, determination of this length has not yet been completely assessed. This paper summarizes previous works on the EBL and proposes a new relationship of the EBL with the FRP stiffness based on the existing experimental data collected in this study.

기하적 필수 전위에 의한 길이효과를 고려한 입자 강화 복합재의 강도해석 (Strength Analysis of Particle-Reinforced Composites with Length-Scale Effect based on Geometrically Necessary Dislocations)

  • 서영성
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2009년도 춘계학술대회 논문집
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    • pp.322-325
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    • 2009
  • An enhanced continuum model for the size dependent strengthening of particle reinforced composites is presented. The model accounts explicitly for the enhanced strength in a discretely defined "punched zone" around the particle in a metal matrix composite as a result of geometrically necessary dislocations developed through a CTE mismatch. The size of the punched zone presents an intrinsic length scale, and this results in the size dependence of the overall behavior of the composite. Results show that predicted 0.2% offset yield stresses are increasing with smaller inclusions and larger volume fractions and this length-scale effect on the enhanced strength can be observed by explicitly including GND region around the particle.

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Interfacial mechanical behaviors of RC beams strengthened with FRP

  • Deng, Jiangdong;Liu, Airong;Huang, Peiyan;Zheng, Xiaohong
    • Structural Engineering and Mechanics
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    • 제58권3호
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    • pp.577-596
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    • 2016
  • FRP-concrete interfacial mechanical properties determine the strengthening effect of RC beams strengthened with FRP. In this paper, the model experiments were carried out with eight specimens to study the failure modes and the strengthening effect of RC beams strengthened with FRP. Then a theoretical model based on interfacial performances was proposed and interfacial mechanical behaviors were studied. Finite element analysis confirmed the theoretical results. The results showed that RC beams strengthened with FRP had three loading stages and that the FRP strengthening effects were mainly exerted in the Stage III after the yielding of steel bars, including the improvement of the bearing capacity, the decreased ultimate deformation due to the sudden failure of FRP and the improvement of stiffness in this stage. The mechanical formulae of the interfacial shear stress and FRP stress were established and the key influence factors included FRP length, interfacial bond-slip parameter, FRP thickness, etc. According to the theoretical analysis and experimental data, the calculation methods of interfacial shear stress at FRP end and FRP strain at midspan were proposed. When FRP bonding length was shorter, interfacial shear stress at FRP end was larger that led to concrete cover peeling failure. When FRP was longer, FRP reached the ultimate strain and the fracture failure of FRP occurred. The theoretical results were well consistent with the experimental data.