• 제목/요약/키워드: Fiber reinforcing materials

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현무암 섬유 보강 콘크리트의 물리적 특성에 관한 실험적 연구 (Experimental Study on the Properties of Basalt Fiber Reinforced Concrete)

  • 김경원;한만엽
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1997년도 봄 학술발표회 논문집
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    • pp.341-348
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    • 1997
  • Fibers have been used to improve the tensile strength or toughness of 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 fibers have the advantage which is the fiber itself is a same kind of material as concrete. In this study, fiber length change, orientation of fiber, the strength properties of fiber reinforced concrete have been tested. The test result show that as the amount of fiber increases, 1) workability of concrete has been reduced significantly, 2) the length of fiber reduced down to less than 4mm, 3) orientation factors are between 0.248 and 0.350, 4) compressive strength and elastic modulus have been increased significantly, however, the other strength have not increased significantly.

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PBO, Aramid Chopped Fiber가 함유된 고무복합재료의 기계적 물성연구 (Study on the Mechanical Properties of Rubber Composite Materials Contained PBO, Aramid Chopped Fiber)

  • 이준희;이광우
    • 한국염색가공학회지
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    • 제33권4호
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    • pp.327-337
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    • 2021
  • The uniformly dispersed Aramid and Poly (phenylene benzobisoxazole) (PBO) in a variety of rubber was investigated. The mechanical properties of rubber were characterized by hardness, tensile strength, elongation at break, heat resistance, oil resistance, cold resistance, ozone resistance measurements. The 3mm Aramid chopped fiber better tensile strength than the other Chopped fiber. The Aramid of 3mm chopped fiber showed excellent reinforcing in rubber composite because of homogeneous dispersion. Consequently, the best 3mm Aramid chopped fiber and rubber improved the tensile strength and elongation at break of the composite. Also, 3mm Aramid chopped fiber improved the oil-resistant, ozone resistant and cold resistant.

Mechanical Properties of Cork Composite Boards Reinforced with Metal, Glass Fiber, and Carbon Fiber

  • Min-Seong, CHA;So-Jeong, YOON;Jin-Ho, KWON;Hee-Seop, BYEON;Han-Min, PARK
    • Journal of the Korean Wood Science and Technology
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    • 제50권6호
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    • pp.427-435
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    • 2022
  • For effective applicability of reinforced cork, cork composites reinforced with metal, glass fiber, and carbon fiber were developed, and the effects of the reinforcing materials on the mechanical properties of cork composites were investigated. The bending moduli of elasticity (MOE) of cork composites were in the 32.7-35.9 MPa range, while the bending strength values were in the 1.62-1.73 MPa range. The strength performance decreased in the order cork-metal > cork-carbon fiber > cork-glass fiber. The bending MOEs were improved by 29%-41% compared with simple cork boards, while the bending strengths of reinforced cork were 35%-45% higher. The strength performance significantly improved following the incorporation of thin mesh materials into the middle layer of the studied cork composites. The bending strains of the cork composites were remarkably higher compared with oak wood, making them promising for applications that require bending processing, such as curved jointing. The internal bond strengths of the cork composites were 0.26-0.44 MPa, approximately 0.36-0.60 times lower compared with medium-density fiber boards.

보강섬유와 고로슬래그 미분말 함유량에 따른 차수그라우트재 개발 (Development of Reinforcement Grout Materials Using Reinforcing Fiber and Blast Furnace Slag Powder)

  • 서혁;김대현
    • 한국지반신소재학회논문집
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    • 제18권3호
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    • pp.101-112
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    • 2019
  • 그라우팅 공법은 연약지반의 보강과 방수, 부등침하로 손상된 구조물의 지지력을 향상시킨다. 본 연구는 보강섬유와 고로슬래그 미분말을 이용하여 그라우트재의 압축강도와 차수를 향상시키는데 있다. 이와 관련하여 본 연구에서는 고로슬래그 미분말의 비율이 높은(50% 이상) 시료에 대해 일축압축시험을 수행하였다. Mpa또한 탄소섬유와 아라미드 섬유를 비교하기 위하여 0, 0.5, 1.0%로 증가시켜 실험하였다. 탄소섬유 및 아라미드 섬유 함유량이 증가함에 따라 일축압축강도가 증가하였고 이는 그라우트재 내에 섬유에 의한 가교작용이 일축압축강도를 증가시키는 경향을 확인하였다. 또한 아라미드 섬유로 보강된 그라우트재에서 탄소섬유로 보강된 그라우트재 보다 일축압축강도가 약 10%이상 증가된 것을 확인하였다.

[Retracted]Structural behavior of RC channel slabs strengthened with ferrocement

  • Yousry B.I. Shaheen;Ashraf M. Mahmoud
    • Structural Engineering and Mechanics
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    • 제86권6호
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    • pp.793-815
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    • 2023
  • The current study looks at the experimental and numerical performance of ferrocement RC channel slabs reinforced with welded steel mesh, expanded steel mesh, and fiber glass mesh individually. Ten RC channel slabs with dimensions of 500 mm×40 mm×2500 mm were subjected to flexural loadings as part of the testing program. The type of reinforcing materials, the number of mesh layers, and the reinforcement volume fraction are the key parameters that can be changed. The main goal is to determine the impact of using new inventive materials to reinforce composite RC channel slabs. Using ANSYS -16.0 Software, nonlinear finite element analysis (NLFEA) was used to simulate the behavior of composite channel slabs. Parametric study is also demonstrated to identify variables that can have a significant impact on the model's mechanical behavior, such as changes in slab dimensions. The obtained experimental and numerical results indicated that FE simulations had acceptable accuracy in estimating experimental values. Also, it's significant to demonstrate that specimens reinforced with fiber glass meshes gained approximately 12% less strength than specimens reinforced with expanded or welded steel meshes. In addition, Welded steel meshes provide 24% increase in strength over expanded steel meshes when reinforcing RC channel slabs. In general, ferrocement specimens tested under flexural loadings outperform conventional reinforced concrete specimens in terms of ultimate loads and energy absorbing capacity.

다양한 격자 길이를 갖는 광섬유 브래그 격자 센서의 제작 기법과 격자 길이에 따른 반사 스펙트럼 특성 연구 (The Fabrication Method of Fiber Bragg Grating Sensor with Various Grating Length and Signal Characteristics of Reflected Spectra with Grating Length)

  • 강동훈;홍창선;김천곤
    • Composites Research
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    • 제17권4호
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    • pp.32-39
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    • 2004
  • 여러 광섬유 센서 중에서, FBG 센서는 다중화의 큰 장점으로 인해 다른 광섬유 센서에 비해 더 활발히 연구가 진행되고 있다. 최근, FBG 센서의 적용 연구는 부착보다는 복합재료 내부에 삽입 적용되는 경우가 많아지고 있다. 하지만, FBG 센서의 삽입 시 복합재료의 강화섬유와 평행하지 않게 삽입할 경우 발생하는 센서의 복굴절 현상으로 인해 삽입에 많은 제한이 있었다. 본 연구에서는 제작이 간편하고 다중화에 영향을 받지 않으며 복합재료 내부에 삽입 시 복굴절의 영향으로부터 보다 안정한 다양한 격자 길이의 FBG 센서 제작 기법에 대해 연구하였다. 그리고, 2 가지 종류의 복합재료에 대한 성형 모니터링을 통해 제작된 센서의 신호 특성에 대해 고찰하였다.

탄소섬유쉬트 올방향에 따른 콘크리트 기둥 보강성능 (The Strengthening Effects of Concrete Columns Confined with Carbon Fiber Sheets along the Fiber Direction)

  • 김양중;홍갑표
    • 한국건축시공학회지
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    • 제11권4호
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    • pp.326-332
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    • 2011
  • 구조물의 내력증진 방법으로 적용되는 섬유재료에는 탄소섬유와 아라미드섬유 브론섬유 및 유리섬유 등이 있다. 이 중에서도 탄소섬유는 가장 많이 쓰이는 재료로서 다른 종류의 섬유올이 2방향성인 반면 탄소섬유 올은 1방향성으로서 부착되는 섬유올 방향으로만 인장내력에 의해 보강되므로 현장적용 시 섬유올의 부착방향이 매우 중요한 요소이나 보강설계 시 이에 대한 뚜렷한 도시가 되지 않아 구조적 지식이 없는 현장기술자 또는 인부들의 무개념적인 시공으로 보강성능을 전연 확보하지 못하는 사례가 종종 발생되곤 한다. 본 연구는 콘크리트 기둥에 대한 탄소섬유쉬트 방향에 따른 보강성능을 파악코자 각 실험체별로 섬유 올의 경사, 수평 및 수직방향으로 보강한 후 가력을 통한 보강성능을 비교 분석하여 섬유올 방향이 보강성능에 미치는 영향을 대비분석함으로서 섬유방향에 대한 최적의 보강설계 방안을 제시하고자 하였으며, 실험결과 수평방향의 보강성능은 153.43%인 반면 수직보강은 겨우 104.61%로서 거의 보강효과가 없는 것으로 나타났다. 이는 섬유올 방향의 인장내력 증진에 따른 구속효과에 의한 보강효과로서 보강설계와 현장관리에 철저한 관리가 절대적이다.

Current Status of $SiC_{f}/SiC$ Composites Material in Fusion Reactor

  • Yoon, Han-Ki;Lee, Sang-Pill
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회A
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    • pp.166-171
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    • 2007
  • The characterization of monolithic SiC and SiCf/SiC composite materials fabricated by NITE and RS processes was investigated in conjunction with the detailed analysis of their microstructure and density. The NITE-SiC based materials were fabricated, using a SiC powder with average size of 30 nm. RS- SiCf/SiC composites were fabricated with a complex slurry of C and SiC powder. In the RS process, the average size of starting SiC particle and the blending ratio of C/SiC powder were $0.4\;{\mu}m$ and 0.4, respectively. The reinforcing materials for /SiC composites were BN-SiC coated Hi-Nicalon SiC fiber, unidirectional or plain woven Tyranno SA SiC fiber. The characterization of all materials was examined by the means of SEM, EDS and three point bending test. The density of NITE-SiCf/SiC composite increased with increasing the pressure holding time. RS-SiCf/SiC composites represented a great decrease of flexural strength at the temperature of $1000\;^{\circ}C.$

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섬유복합재료(FRP)의 건설 적용 사례 연구(교량편) (A Study on the Application Case in Civil Structures of Fiber Reinforced Composites (Bridges))

  • 한복규;홍건호;김기수
    • Composites Research
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    • 제19권2호
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    • pp.35-41
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    • 2006
  • FRPs have been used widely and demonstrated in the field of aero industries etc., and began to be used as new construction materials of civil structures. Pre-stressing tendons, reinforcing bars etc. are all examples of the many diverse applications of FRP in new structures. Especially, 40 of all-FRP bridges were reported. The reason why FRP composites were used fur construction materials of civil structures, has been that the working time and the cost of maintenance can be reduced because of the effect of their lightness and durabilities. The purpose of this paper is to report the examples of the many diverse applications of Fiber Reinforced Plastic in construction materials of civil structures.

Impact Energy Absorption Mechanism of Largely Deformable Composites with Different Reinforcing Structures

  • Kang, Tae-Jin;Kim, Cheol
    • Fibers and Polymers
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    • 제1권1호
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    • pp.45-54
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    • 2000
  • Impact behaviors of the large deformable composites of Kevlar fiber reinforced composites of different preform structures have been investigated. An analytic tool was developed to characterize the impact behavior of the Kevlar composites. The image analysis technique, and deply technique were employed to develop energy balance equation under impact loading. An energy method was employed to establish the impact energy absorption mechanism of Kevlar multiaxial warp knitted composites. The total impact energy was classified into four categories including delamination energy, membrane energy, bending energy and rebounding energy under low velocity impact. Membrane and bending energy were calculated from the image analysis of the deformed shape of impacted specimen and delamination energy was calculated using the deplying technique. Also, the impact behavior of Kevlar composites under high velocity impact of full penetration of the composite specimen was studied. The energy absorption mechanisms under high velocity impact were modelled and the absorbed energy was classified into global deformation energy, shear-out energy, deformation energy and fiber breakage energy. The total energy obtained from the model corresponded reasonably well with the experimental results.

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