• 제목/요약/키워드: ceramic fiber

검색결과 422건 처리시간 0.036초

서로 다른 밀도를 갖는 탄소섬유강화 탄화규소 복합재료의 압흔응력에 의한 기계적 거동 (Mechanical Behavior of Indentation Stress in Carbon Fiber Reinforced Silicon Carbide Composites with Different Densities)

  • 이기성;김일겸;김태우;김세영;한인섭;우상국
    • 한국세라믹학회지
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    • 제48권4호
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    • pp.288-292
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    • 2011
  • In this study, we investigated the mechanical behavior of carbon fiber reinforced silicon carbide composites by indentation stress. Relatively porous and dense fiber reinforced ceramic composites were fabricated by liquid silicon infiltration (LSI) process. Densification of fiber composite was controlled by hardening temperature of preform and consecutive LSI process. Load-displacement curves were obtained during indentation of WC sphere on the carbon fiber reinforced silicon carbide composites. The indentation damages at various loads were observed, and the elastic modulus were predicted from unloading curve of load-displacement curve.

Structural Control Aiming for High-performance SiC Polycrystalline Fiber

  • Ishikawa, Toshihiro;Oda, Hiroshi
    • 한국세라믹학회지
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    • 제53권6호
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    • pp.615-621
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    • 2016
  • SiC-polycrystalline fiber (Tyranno SA, Ube Industries, Ltd.) shows very high heat-resistance and excellent mechanical properties up to very high temperatures. However, further increase in the strength is required. Up to now, we have already clarified the relationship between the strength and the defect-size of the SiC-polycrystalline fiber. The defects are formed during the conversion process from the raw material (amorphous Si-Al-C-O fiber) into SiC-polycrystalline fiber. In this conversion process, a degradation of the Si-Al-C-O fiber and a subsequent sintering of the degraded fiber proceed as well, accompanied by a release of CO gas and compositional changes, to obtain the dense SiC-polycrystalline fiber. Since these changes proceed in each filament, the strict control should be needed to minimize residual defects on the surface and in the inside of each filament for achieving the higher strength. In this paper, the controlling factors of the fiber strength and the fine structure will appear.

유리섬유 강화 근관치료 포스트의 제조 및 특성에 대한 연구 (Preparation and properties of glass fiber-reinforced endodontic (root canal therapy) posts)

  • 손재용;김경자;김경훈;박주석;심광보
    • 한국결정성장학회지
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    • 제25권3호
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    • pp.105-110
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    • 2015
  • 근관 치료를 위해 사용되는 섬유 강화형 포스트를 광중합 레진과 유리섬유를 이용하여 제조하였다. 제조된 포스트는 유리 섬유의 밀도가 높아짐에 따라 기계적 특성이 향상됨을 확인 할 수 있었고 광중합 레진의 점도 조절 및 진공함침 공정을 통해 미세 기공을 효과적으로 제거 할 수 있었다. 유리섬유와 광중합 레진과의 계면 결합력을 향상시키기 위해 유리 섬유 표면을 실란 커플링제를 사용하여 표면처리를 하였으며, 유리섬유의 표면처리는 유리 섬유 표면에 레진의 젖음성을 향상시켜 레진과의 결합 특성을 향상시키고 포스트의 기계적 특성을 향상시킴을 확인할 수 있었다.

SiC/p-Aramid 복합방적사 제조기술 연구 (Research of the Composite Spun Yarn Manufacturing Process using Silicon Carbide and Para Aramid Fiber)

  • 김북성;유희준
    • 한국염색가공학회지
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    • 제33권4호
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    • pp.309-316
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    • 2021
  • Due to the rigid nature of the silicon carbide fiber(SiC), fiber damage occurs from the friction during the carding process. This damage not only lowers the spun yarn yield, but also lowers the heat resistance of the spun yarn, so that ultra-high heat resistant yarn cannot be manufactured. Therefore, in the carding process where the most friction between fiber and machine(wire, etc.) occurs, some factors were modified and tested, and as a result of measuring the change in physical properties, fiber damage decreased due to the wire angle or wire density, resulting in improved yield. The test method used to measure the yield of SiC fiber was the carbonization method, and the content of SiC fibers was calculated using the remaining amount after carbonization. Carbonization test was performed at air condition, 700℃, and for 2 hours. Analysis by SEM-EDX showed that the carbide was consistent with the composition of the SiC fiber.

Mechanical Behavior and Numerical Estimation of Fracture Resistance of a SCS6 Fiber Reinforced Reaction Bonded Si$_3$N$_4$ Continuous Fiber Ceramic Composite

  • Kwon, Oh-Heon;Michael G. Jenkins
    • Journal of Mechanical Science and Technology
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    • 제16권9호
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    • pp.1093-1101
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    • 2002
  • Continuous fiber ceramic composites (CFCCs) have advantages over monolithic ceramics : Silicon Nitride composites are not well used for application because of their low fracture toughness and fracture strength, but CFCCs exhibit increased toughness for damage tolerance, and relatively high stiffness in spite of low specific weight. Thus it is important to characterize the fracture resistance and properties of new CFCCs materials. Tensile and flexural tests were carried out for mechanical properties and the fracture resistance behavior of a SCS6 fiber reinforced Si$_3$N$_4$ matrix CFCC was evaluated. The results indicated that CFCC composite exhibit a rising R curve behavior in flexural test. The fracture toughness was about 4.8 MPa$.$m$\^$1/2 , which resulted in a higher value of the fracture toughness because of fiber bridging. Mechanical properties as like the elastic modulus, proportional limit and the ultimate strength in a flexural test are greater than those in a tensile test. Also a numerical modeling of failure process was accomplished for a flexural test. This numerical results provided a good simulation of the cumulative fracture process of the fiber and matrix in CFCCs.

Ceramic 섬유의 강도 평가에 대한 Weibll 이론의 적용 (Application of Weifull강s Theory to Evaluation of Strength for Ceramic Fibers)

  • 이지환;김현수;한상훈
    • 한국세라믹학회지
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    • 제27권8호
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    • pp.1043-1049
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    • 1990
  • In this work, strength of ceramic fibers and monofilament composites were evaluated on the basis of Weibull's theory. The fibers used were β-SiC and γ-Al2O3 monofilament composites was fabricated by coating Al on the fiber surface by the use of vacuum evaporation method. Average tensile strength of ceramic fibers showed the tendency to linearly decrease with increasing gauge length. Also, Weibull moduli of ceramic fibers were decreased with increasing gauge length, Weibull modulus of β-SiC was 3.5 for 6-50mm, 2.8 for 100-200mm. Weibull modulus of γ-Al2O3 was 6.5 for 20-50mm, 6 for 100mm. Fibers in monofilament retained their original as-produced strength to exposure temperature of 400℃. However, tensile strength of both monofilament composites approved to remarkably degrade due to interfacial reaction-induced flaws on the fiber surface after thermal exposure of 600℃. In this case, Weibull modulus of monofilament composites was 2.7 for β-SiC and 5.2 for γ-Al2O3 respectively.

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유연한 탄화규소 섬유 로프 발열체의 제조와 저항 발열 특성 (Fabrication and resistance heating properties of flexible SiC fiber rope as heating elements)

  • 주영준;조광연
    • 한국결정성장학회지
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    • 제30권6호
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    • pp.258-263
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    • 2020
  • 고분자로부터 제조되는 탄화규소 섬유는 고온 내산화성, 인장강도, 그리고 경량성 때문에 세라믹 복합체의 강화재료로 주로 적용되고 있다. 본 연구에서 탄화규소 연속섬유는 유연한 로프 형태의 고온 발열체(> 650℃)로 제조하기 위해 사용되었다. 특히, 탄화규소 섬유 발열체는 고효율의 저항 발열을 위해 단면적과 길이에 대한 저항 변화를 2-point probe 방법으로 측정하고, 비정질 탄화규소 섬유에 존재하는 산소 불순물과 결정립의 크기 제어를 통해 로프형 섬유 발열체의 저항 값을 최적화하였다. 그 결과, 약 100~200 Ω의 저항 범위를 가지는 탄화규소 섬유 발열체는 탄소 섬유 발열체보다 1.5배의 우수한 소비전력 효율을 가졌다.

고온용 복합재료의 크립 거동에 있어서 구성요소의 영향에 대한 연구 (A Study on the Influence of its Constituents on the Creep Behavior of High Temperature Composite Materials)

  • 박용환
    • 한국안전학회지
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    • 제13권2호
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    • pp.45-53
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    • 1998
  • A method to predict the creep behavior of fiber-reinforced ceramic composites at high temperatures was suggested based on finite element modeling using constituent creep equations of fiber and matrix and showed good agreement with the experimental results. The effects of matrix creep behavior, fiber volume fraction, and residual stresses on the composite creep behavior were also investigated. The results showed that the primary behavior of composites was greatly affected by that of matrix but post-primary behavior was governed by fiber creep characteristics. The increase of fiber volume fraction from 15 vol% to 30 vol% caused the 50% and 40% decrease of steady-state creep rates and total creep strains at $1200^{\circ}C$, 180MPa, respectively. Feasible compressive residual stresses in the matrix caused by different thermal expansion coefficients between the fiber and the matrix could significantly reduce total creep strains of the composite. The creep deformation mechanism in the fiber-reinforced ceramic composites could be explained by the stress transfer and redistribution in the fiber and matrix due to different creep characteristics of its constituents.

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Numerical and Experimental Evaluation of Tensile Failure in Continuous Fiber Reinforced Ceramic Composite

  • Kwon, Oh Heon;Park, Keyoung Dong;Watanabe, Katsuhiko
    • International Journal of Safety
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    • 제2권1호
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    • pp.23-27
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    • 2003
  • Recently, continuous fiber reinforced ceramic composite(CFCC) has attracted attention to a number of engineers because of its significant benefit for several industrial area. This work was conducted to provide a basic characteristic of CFCC for tensile loading condition. The numerical analysis by general purpose finite element program was accomplished and compared with an experimental tensile test. The stress strain curves were expressed well by the numerical analysis and the first matrix cracking stress was in accordance with that of the experimental result. Moreover, fracture pattern was shown by kill command graphically.

Nicalon 섬유강화 SiC 복합재료에서 섬유 Coating층의 두께가 기계적 성질에 미치는 영향 (Effect of Interlayer Thickness on Mechanical Properties of Nicalon-Fiber-Reinfored SiC Composites)

  • 김민수;김영욱;이준근;정덕수
    • 한국세라믹학회지
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    • 제30권7호
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    • pp.549-556
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    • 1993
  • Interfacial shear strength plays an important role in determining the mechanical properties of a fiber-reinforced ceramic composites. In this study, the effect ofinterlayer thickness on mechanical properties of Nicalon-fiber-reinforced SiC composites fabricated via polymer solution infiltration/chemical vapor infiltration (PSI/CVI) was studied. It was found that the flexural strength and fracture toughness of the composites were increased with the interlayer thickness and showed maximum value at the interlayer thickness of 0.66${\mu}{\textrm}{m}$. Typical flexural strength and fracture toughness of Nicalon-fiber-reinforced SiC composites with interlayer thickness of 0.66${\mu}{\textrm}{m}$ were 391.7$\pm$34.6MPa and 15.1$\pm$1.8MPa.m1/2, respectively.

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