• 제목/요약/키워드: Fiber reinforcing materials

검색결과 210건 처리시간 0.03초

탄소판가새를 이용한 농촌 저층건물의 내진보강 (Seismic Reinforcement of Rural Low-rise Building using Carbon Fiver Plate)

  • 정동조;최성대
    • 한국농촌건축학회논문집
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    • 제16권2호
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    • pp.1-8
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    • 2014
  • In the past, Korea was classified as a region not affected by earthquakes. However, recent increase of earthquakes has forced to strengthen standards of earthquake resistant designs of structures to minimize seismic damage. In addition, it was thought that masonry infill walls in buildings are only acting as partitions, so these walls are not considered in analyzing building structures. But it was found that when seismic loads are applied to a structure with masonry infill walls, the walls affect the structure. Accordingly, this study conducted nonlinear static analyses for a structure constructed before applying earthquake resistant designs in two cases: when considering masonry walls and when not. The result showed that the seismic performance of the structure is insufficient. Thus, the structural resistance of the structure was also studied in two cases: when reinforcing with steel plate braces and when using carbon fiber braces. In the two cases reinforcing two different stiffeners, it was appeared that the behaviors of the structure were similar, though the cross-section area of a carbon fiber brace used to reinforcing the structure is only 12.6% of a steel plate brace, and its weight is only 2.8%. Thus, the reinforcing effect of the thin, light-weighted carbon fiber brace is much larger than that of the steel plate brace, when considering usability and constructability of both materials.

[Retracted]Structural performance of RC beams with openings reinforced with composite materials

  • Shaheen, Yousry B.I.;Mahmoud, Ashraf M.
    • Structural Engineering and Mechanics
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    • 제83권4호
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    • pp.475-493
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    • 2022
  • The results of research focusing on the experimental and numerical performance of ferrocement RC beams with openings reinforced with welded steel mesh, expanded steel mesh, fiber glass mesh, and polyethylene mesh independently are presented in this article. Casting and testing of fourteen reinforced concrete beams with dimensions of 200×100×2000 mm under concentric compression loadings were part of the research program. The type of reinforcing materials, the volume fraction of reinforcement, the number of mesh layers, and the number of stirrups are the major parameters that change. The main goal is to understand the impact of using new appealing materials in reinforcing RC beams with openings. Using ANSYS-16.0 Software, nonlinear finite element analysis (NLFEA) was used to demonstrate the behavior of composite RC beams with openings. A parametric study is also conducted to discuss the variables that can have the greatest impact on the mechanical behavior of the proposed model, such as the number of openings. The obtained experimental and numerical results demonstrated the FE simulations' acceptable accuracy in estimating experimental values. Furthermore, demonstrating that the strength gained of specimens reinforced with fiber glass meshes was reduced by approximately 38% when compared to specimens reinforced with expanded or welded steel meshes is significant. In addition, when compared to welded steel meshes, using expanded steel meshes in reinforcing RC beams with openings results in a 16 percent increase in strength. In general, when ferrocement beams with openings are tested under concentric loadings, they show higher-level ultimate loads and energy-absorbing capacity than traditional RC beams.

해조류를 이용한 친환경 에너지소재 (Algae Based Energy Materials)

  • 한성옥
    • 신재생에너지
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    • 제4권4호
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    • pp.50-55
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    • 2008
  • Recently, sea algae cultivation as carbon sink and carbon dioxide fixation have been considered. Also, various researches on bioenergy derived from sea algae and the utilization of fibers, saccharide, and lipid of sea algae have been performing. Till now, algae fibers has been used for manufacturing of paper and reinforcing of polymer composites and the extracts of sea algae are used for cosmetics, pharmaceutical materials and food such as agar. Especially, algae fiber has so similar properties to cellulose in terms of crystallinity and functional groups that it can be utilized as reinforcements of biocomposites. Biocomposites as alternatives of glass fiber reinforced polymer composites are environmentally friendly polymer composites reinforced with natural fibers and are actively applying to the automobiles and construction industries. In this paper, characteristics of algae fiber and biocomposites reinforced with algae fiber as environmentally friendly energy materials have been introduced.

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신소재 복합재료를 이용한 비굴착 지하매설관 보수-보강공법 (Trenchless Repairing-Reinforcing Process of Underground Pipes with Advanced Composite Materials)

  • 진우석;권재욱;이대길;유애권
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 2001년도 추계학술발표대회 논문집
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    • pp.43-48
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    • 2001
  • To overcome the disadvantages of conventional excavation technology, various trenchless (or excavation free, or no-dig) repair-reinforcement technologies have been developed and tried. But trenchless technologies so fat developed have some brawbacks such as high cost and inconvenience of operation. In this study, a repairing-reinforcing process for underground pipes with glass fiber fabric polymer composites using VARTM(Vacuum Assisted Resin Transfer Molding) has been developed. The developed process requires shorter operation time and lower cost with smaller and simpler operating equipments than those of the conventional trenchless technologies. For the reliable operation of the developed method, a simple method to apply pressure and vacuum to the reinforcement was devised and flexible mold technology was tried. Also, resin filling and cure status during RTM process were monitored with a commercial dielectrometry cure monitoring system, LACOMCURE. From the investigation, it has been found that the developed repairing-reinforcing technology with appropriate process variables and on-line cure monitoring has many advantages over conventional methods.

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탄소섬유그리드 보강 휨부재의 거동에 대한 실험적 연구 (An Experimental Study on the Behavior of Carbon Fiber Grid Reinforced Flexural Members)

  • 박제용;안동준;정상균;윤순종
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 1999년도 추계학술발표대회 논문집
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    • pp.154-159
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    • 1999
  • In this paper we present tile results of an experimental investigation on the physical and mechanical properties of carbon fiber grid, polymer mortar, and carbon fiber grid reinforced plain concrete flexural members. In order to repairing and reinforcing damaged and/or deteriorated existing concrete structural members, new materials have been developed and utilized in the construction industries. But the physical and mechanical behaviors of the material are not well understood. To use the material effectively various aspects of the material must be throughly investigated analytically as well as experimentally. In this investigation we found the physical and mechanical properties of carbon fiber grid and polymer mortar which are directly utilized in the repair and reinforcement design of damaged or deteriorated concrete structures. In addition, we also investigate the strengthening effect of carbon fiber grid on the plain concrete flexural test specimens. It was found that the material can be used to repair and strengthen the concrete structures effectively.

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AFRP 보강 콘크리트 슬래브의 충격 특성에 관한 연구 (Impact Characteristics of AFRP Reinforced Concrete Slab)

  • 박승진
    • 한국재난정보학회 논문집
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    • 제14권4호
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    • pp.492-500
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    • 2018
  • 연구목적: 본 논문에서는 이와 같은 배경을 근거로 충격하중 재하시 신소재 섬유로 보강한 콘크리트 슬래브 거동을 연구하는 것을 주 목적으로 알루미늄 섬유를 이용한 AFRP로 보강한 콘크리트 슬래브 중앙의 강재를 자유낙하 시켰을 때 충격실험을 검토하고자 한다. 연구결과: 신소재를 콘크리트 부재의 보강재로 이용하는 연구는 정적 하중하에서 휨 및 전단에 관한 연구나 반복하중 하에서 피로하중에 관한 연구와 PC 보에서의 적용에 관한 연구 등이 많이 보고 되고 있다. 결론: 신소재를 콘크리트 부재의 보강근으로 이용하는 연구의 일환으로 본 논문에서는 알루미늄 섬유로 보강된 조립상 AFRP 로트를 이용한 콘크리트 슬래브를 설치하여 동적거동에 대해서 실험을 실시하였다.

리그노셀룰로오스 섬유/열가소성 고분자 복합재의 계면 현상 (Interfacial Phenomena of Lignocellulose Fiber/Thermoplastic Polymer Composites)

  • 손정일;양한승;김현중
    • 접착 및 계면
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    • 제3권4호
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    • pp.44-52
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    • 2002
  • Composite materials are created by combining two or more component to achieve desired properties which could not be obtained with the separate components. The use of reinforcing fillers, which can reduce material costs and improve certain properties, is increasing in thermoplastic polymer composites. Currently, various inorganic fillers such as talc, mica, clay, glass fiber and calcium carbonate are being incorporated into thermoplastic composites. Nevertheless, lignocellulose fibers have drawn attention due to their abundant availability, low cost and renewable nature. In recent, interest has grown in composites made from lignocellulose fiber in thermoplastic polymer matrices, particularly for low cost/high volume applications. In addition to high specific properties, lignocellulose fibers offer a number of benefits for lignocellulose fiber/thermoplastic polymer composites. These include low hardness, which minimize abrasion of the equipment during processing, relatively low density, biodegradability, and low cost on a unit-volume basis. In spite of the advantage mentioned above, the use of lignocellulose fibers in thermoplastic polymer composites has been plagued by difficulties in obtaining good dispersion and strong interfacial adhesion because lignocellulose fiber is hydrophilic and thermoplastic polymer is hydrophobic. The application of lignocellulose fibers as reinforcements in composite materials requires, just as for glass-fiber reinforced composites, a strong adhesion between the fiber and the matrix regardless of whether a traditional polymer matrix, a biodegradable polymer matrix or cement is used. Further this article gives a survey about physical and chemical treatment methods which improve the fiber matrix adhesion, their results and effects on the physical properties of composites. Coupling agents in lignocellulose fiber and polymer composites play a very important role in improving the compatibility and adhesion between polar lignocellulose fiber and non-polar polymeric matrices. In this article, we also review various kinds of coupling agent and interfacial mechanism or phenomena between lignocellulose fiber and thermoplastic polymer.

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열경화성 연속섬유 복합재를 이용해 외측 보강된 3D 프린팅 열가소성 복합재 구조물의 굽힘 특성 향상에 대한 연구 (A Study on the Improvement of Bending Characteristics of 3D Printed Thermoplastic Structures Reinforced at the Lateral Surface using Continuous Fiber Reinforced Thermosetting Composites)

  • 백운경;남기법;노재승;박성은;노정우
    • Composites Research
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    • 제34권2호
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    • pp.136-142
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    • 2021
  • 3D 프린팅 기술은 금형이 없이 다양한 형태의 제품을 만들기 쉬운 장점이 있지만, 기존 보편화된 성형법에 비해 기계적 물성이 낮고, 소재 및 제작 조건 등에 따라 기계적 물성이 크게 달라지는 문제가 있다. 한편, 높은 물성을 구현하기 위해서는 제조비용이 높아지는 문제가 있어, 이에 대한 연구 필요성이 증가하고 있다. 본 연구에서는 단섬유 탄소섬유 보강 나일론 필라멘트를 이용하여 3D 프린팅 열가소성 구조물을 제작하였다. 또한 인발 성형된 연속섬유 형태의 탄소섬유 혹은 유리섬유 강화 열경화성 복합재를 이용해 외측면을 보강하여 기계적 물성 향상 방법을 제시하였다. 보강재의 보강 위치와 섬유의 종류에 따른 굽힘물성 향상을 확인하였다.

Basalt 섬유로 보강된 철근콘크리트 보의 휨 성능 고찰 (The Considerations on Flexural Performance of RC Beam Strengthened with Basalt Fibers)

  • 심종성;문도영;박성재;박경동
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 가을 학술발표회 논문집
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    • pp.599-604
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    • 2002
  • Fibers have been used to improve tile flexural performance of reinforced concrete. Therefore many different kinds of fibers have been developed and tested to reinforcing concrete. Basalt fiber is one of the recently developed materials for this purpose. Basalt fiber produced from this basalt raw material has high initial strength and durability. But, the main advantages of the basalt fiber are resistance to high operating temperatures and lower modulus and chemical resistance compared to fiberglass. Also basalt fiber may be consumed as a potential replacement for expensive carbon fibers.

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PET 섬유 보강재를 사용한 섬유 보강 콘크리트의 성능 평가에 관한 연구 (A study on performance evaluation of fiber reinforced concrete using PET fiber reinforcement)

  • 오리온;유용선;박찬기;박성기
    • 한국터널지하공간학회 논문집
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    • 제25권4호
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    • pp.261-283
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    • 2023
  • 본 연구는 최근 섬유 보강 콘크리트의 성능 보강재료 적용이 검토되고 있는 합성섬유 종류 중 PET (Polyethylene terephthalate) 섬유 보강재에 대하여 단기 및 장기 성능변화 여부 검토를 통해 PET 섬유의 성능 안정성을 검토하고자 하였다. 이를 위하여 PET 섬유를 산/알칼리 환경에 노출시킨 후 잔류 성능을 분석하였으며, PET 섬유 보강 콘크리트 배합의 재령별 휨강도, 등가 휨강도, 그리고 콘크리트 시편에서 채취한 PET 섬유를 주사현미경(SEM)을 이용하여 표면의 변화를 분석하였다. PET 섬유의 산/알칼리 환경 노출 실험결과, 산성 환경에서는 83.4~96.4%, 알칼리 환경에서는 42.4~97.9%의 강도 보유율을 나타내었다. 섬유 자체의 강도 보유율은 고온의 강알칼리 조건에 노출될 경우 강도 감소가 크게 발생하는 것을 확인할 수 있었으며, 강도 보유율은 에폭시로 코팅된 가공사에서 강도보유율이 증가하는 것으로 나타났다. PET 섬유 보강 콘크리트 배합의 휨강도 및 등가 휨강도 실험결과에서는 휨강도 저하가 나타나지 않았으며, 등가 휨강도 결과도 섬유 보강재로써의 성능 저하는 나타나지 않았다. SEM 분석 결과에서도 PET 보강 섬유의 표면 손상이나 단면 변화가 관찰되지 않았다. 이와 같은 결과는 섬유 보강 콘크리트가 초기 고온 노출되는 경우나 재령 경과에 따라서도 시멘트 콘크리트 환경에서는 PET 보강 섬유가 어떠한 손상이나 단면 감소가 발생하지 않는다는 것을 의미하며, 시멘트 콘크리트 환경에서는 PET 섬유에 대한 강도 감소 영향은 우려하지 않아도 된다는 것으로 판단된다. 재령에 따른 휨강도, 등가 휨강도도 안정적으로 발현됨에 따라 PET 섬유 보강재의 사용으로 우려되는 가수분해로 인한 성능저하 등이 발생하지 않는 것으로 볼 수 있으며, 안정적인 잔류강도 보유 특성을 나타내는 것을 확인하였다.