• Title/Summary/Keyword: Whiskers

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Synthesis of Silicon Carbide Whiskers (II): Stacking Faults (탄화규소 휘스커의 (II): 적층결함)

  • 최헌진;이준근
    • Journal of the Korean Ceramic Society
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    • v.36 no.1
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    • pp.36-42
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    • 1999
  • Stacking faults in SiC whiskers grown by three different growth mechanisms; vapor-solid(VS), two-stage growth(TS), and vapor-liquid-solid (VLS) mechanism in the carbothermal reduction system were investigated by X-ray diffraction(XRD) and transmission electron microscopy (TEM). The content of stacking faults in SiC whiskers increased with decreasing the diameter of whiskers, i.e., the small diameter whiskers (<1 $\mu\textrm{m}$) grown by the VS, TS, and VLS mechanisms have heavy stacking faults whereas the large diameter whiskers(>2$\mu\textrm{m}$) grown by the VLS mechanism have little stacking faults. Heavy stacking faults of small diameter whiskers was probably due to the high specific lateral surface area of small diameter whiskers.

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The Effect of Chemical Vapor Infiltrated SiC Whiskers on the Change in the Pore Structure of a Porous SiC Body

  • Joo, Byoung-In;Park, Won-Soon;Choi, Doo-Jin;Kim, Hai-Doo
    • Journal of the Korean Ceramic Society
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    • v.43 no.4 s.287
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    • pp.199-202
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    • 2006
  • In this study, SiC whiskers were grown on a porous SiC diesel particulate filter for nanoparticle filtering. To grow the whiskers at the inner pore without closing the pores, we used chemical vapor infiltration with a solution source and a dilute. As the deposition time increased, the whiskers grew and formed a network structure. After 180 min of deposition, the mean diameter of the whiskers was 174 nm and the compressive strength was 58.4 MPa. The pores shrank from $10{\mu}m\;to\;0.4{\mu}m$ and, because the whiskers filed the inner pores, the gradient of permeability decreased as the deposition time increased. However, by using the network structure of whiskers deposited for 120 min and 180 min, we obtained a diesel particulate filter with pores of $0.98{\mu}m\;and\;0.4{\mu}m$, respectively. Furthermore, the filter shows better permeability than a porous body with pores of $1{\mu}m$. In short, by filtering the nanoparticulate materials, the network structure of whiskers improves the strength, reduces the pore size and minimizes the permeability drop.

Zirconia Coating of SiC Whiskers Using the Aqueous Solutions of Zr(SO4)2 ($Zr(SO_4)_2$ 수용액을 이용한 SiC 휘스커의 지르코니아 코팅)

  • Kim, Duk-Jun;Kim, Hwan
    • Journal of the Korean Ceramic Society
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    • v.33 no.12
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    • pp.1380-1386
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    • 1996
  • The effects of urea addition and reaction conditions were examined in the prepareation of zirconia coated SiC whiskers through surface precipitation taking place during high-temperature aging of Zr(SO4)2 solutions containing the whiskers. More dense zirconia-hydrate was precipitated on the surfaces of the whiskers in the presence of urea. The ratio of the concentration of Zr(SO4)2 to the amount of added whiskers was the most important factor to confine the precipitation of zirconia-hydrate only at the surfaces of the whiskers The from of the coating layers was unchanged after heat-treatment leading to the dehydration and crystallization of the layers.

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Synthesis of $\beta$-SiC Whiskers by the Carbothermal Reduction of Kaolin (카올린의 환원 열탄화법에 의한 베타 탄화규소 휘스커의 합성)

  • 오세정;류종화;조원승;최상욱
    • Journal of the Korean Ceramic Society
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    • v.35 no.12
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    • pp.1249-1256
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    • 1998
  • ${\beta}$-Silicon carbide(${\beta}$-SiC) whiskers could be synthesized by the carbothermal reduction of kaolin at tem-peratures between 1400 and 1500$^{\circ}C$. The whiskers were grown up to about 1150 of aspect ratio by VS mechanism (showing tapering tips) and to about 45 of that by VLS mechanism (showing round droplet tips) respectively. Hydrocarbon like methane in the reaction atmosphere promoted the formation of gaseous il-icon monoxide(SiO) from silicon dioxide(SiO2) and subsequently reacted with it to form whiskers. The for-mation of ${\beta}$-SiC whiskers increased with increasing carbon content(to 30 wt%) and reaction temperatures. The max. yield of ${\beta}$-SiC whiskers was 15% at 1500$^{\circ}C$ under 20%CH4/80%H2.

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Tribological Behavior of the Alumina Reinforced with Unidirectionally Oriented SiC whiskers (일방향성 배열을 가잔 SiC whisker에 의해 강화된 알루미나 복합체의 마모마찰 특성)

  • 간태석;임대순;한병동
    • Proceedings of the Korean Society of Tribologists and Lubrication Engineers Conference
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    • 1998.10a
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    • pp.25-29
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    • 1998
  • Sliding wear test and surface characterization techniques such as micro-Raman spectroscopy were employed to determine the effect of whisker content and orientation on the friction and wear behavior of SiC whisker reinforced alumina. Composites containing unidirectionally oriented whiskers were fabricated by novel technique Addition of SiC whiskers up to 20 vol.% lowered the friction and improved wear resistance. The results of this study indicated that highly disordered graphite and size of the layer behind the whiskers were responsible for variation of wear rate and friction coefficient.

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Effects of Carbon-coated SiC Whiskers on the Mechanical Properties of SiC Whisker Reinforced Silicon Nitride Ceramic Composite (SiC 휘스커 강화 질화규소 복합재료의 기계작 성질에 미치는 카본 코팅 SiC 휘스커의 영향)

  • 배인경;이영규;조원승;최상욱;장병국;임실묵
    • Journal of the Korean Ceramic Society
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    • v.36 no.10
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    • pp.1007-1015
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    • 1999
  • The Si3N4 composites reinforced with carbon-coated SiC whiskers were fabricated by hot-pressing at 180$0^{\circ}C$ for 2 hours to examine the effects of carbon-coated whiskers on the mechanical properties of SiC whisker reinforced Si3N4 composites. The flexural strength of the Si3N4 composites and Si3N4 monolith respectively. The weak interfacial bond between carbon-coated SiC whiskers and Si3N4 matrix which enhances the crack deflection and whisker pull-out could contribute to the improvement of mechanical properties of the composites.

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Synthesis of SiC Whiskers from Rice Hulls (생왕겨를 이용한 실리콘 카바이드 합성)

  • 길경선;김종학;고인용
    • Resources Recycling
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    • v.2 no.4
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    • pp.17-22
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    • 1993
  • SiC whiskers were synthesized from rice hulls and activated carbon by carbothermal reduction method. The effects of gases and various additives were studied. Carbothermal reduction to produce SiC whiskers was conducted at $1450^{\circ}C$ and the synthesized SiC whiskers were examined using SEM and XRD. The length of whiskers is increased with the increases of $H_2$concentration and total gas flows. The most favorable form of SiC whiskers couble be obtained in the following experimental conditins : Ar : $H_2$=300:45(ml/min), $SiO_2$(inrice hulls): $CaF_2$=1:0.5:0.5(mole ratio) and the addition of Ni flakes ($1{\times}1$mm).

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Surface Roughness Discrimination with Whisker Tactile Sensors Modeling Rodent Whiskers (쥐 수염을 모델로 하는 수염 촉각 센서의 물체 표면 거칠기 구별에 관한 연구)

  • Baek, Seung-Hun;Kim, Dae-Eun
    • Journal of the Institute of Electronics Engineers of Korea SC
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    • v.47 no.4
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    • pp.55-60
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    • 2010
  • Rodents can recognize objects by using their whiskers. Not only rodents but also mammals use their whiskers to recognize objects. However, rodents can discriminate surface roughness in micrometer resolution throughout their whisker sensing. Rats can distinguish an target object's shape, roughness and surface pattern by moving their whisker back and forth freely. Mechanoreceptors surrounding the whisker in their follicle measure deflection and vibration of the whisker. In this paper, we designed biomimetic whiskers modeling rodent whiskers and showed the characteristic properties to extract the information of surface roughness.

Preparation and Application of Functional Carbon Whisker Membrane for Separation Process

  • Bae, Sang-Dae;Son, Hee-Jong;Jung, Chul-Woo
    • Journal of Environmental Science International
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    • v.17 no.11
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    • pp.1235-1241
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    • 2008
  • Membrane separation is extensively used for water/wastewater treatment because of its efficiency separation processes. However, particles in the feed water can deposit and accumulate on the membrane surface to created cake layer. As a consequence, the selectivity of the membrane and flux through the membrane are decreased, which is called fouling/blocking phenomenon. In order to solve fouling problem, we developed a novel membrane named Carbon Whisker Membrane (CWM) which contains vapor-grown carbon fibers/whiskers on the surface of the membrane and a layer of carbon film coated on the ceramic substrate. We firstly employed polymethyl methacrylate (PMMA) as a testing material to investigate the fouling mechanism. The results suggested that Carbon Whiskers on the surface of the membrane can prevent the directly contact between the membrane body and particles so that the fouling/blocking could not occurred easily compared to the membrane without carbon whiskers. We also researched the relationship with the diameter, density of carbon whisker on the membrane surface and total flux of solutions. Finally, we will be able to control the diameter and density of carbon whiskers on the membrane and existence of carbon whiskers on the membrane, it is important factor, might be prevent fouling/blocking in the water treatment.

Effect of Alumina Coating on Mechanical Properties of SiC Whisker Reinforced Silicon Nitrate Ceramic Composite

  • Lee, Ki-Ju;Xu, Jing-Wen;Hwang, Woon-Suk;Cho, Won-Seung
    • Corrosion Science and Technology
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    • v.6 no.1
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    • pp.24-28
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    • 2007
  • Alumina coated SiC whiskers were prepared by homogeneous precipitation of aluminum sulfate. The Si3N4 composites reinforced with coated SiC whiskers were fabricated by hot-pressing at $1800^{\circ}C$ for 2 h under an $N_{2}$ atmosphere of 0.1 MPa to examine the effects of coated whiskers on the mechanical properties of SiC whisker reinforced $Si_{3}N_{4}$ composite. By the addition of alumina coated SiC whiskers instead of as received ones, the fracture toughness of composite was about 6.7 $MPam^{1/2}$ which was slightly lower than as received SiC whisker reinforced composite. This result seems to be caused by the fact that the crack deflection and whisker pull-out were decreased. Thus, alumina coated SiC whiskers were considered to form relatively strong interface bond with $Si_{3}N_{4}$ matrix.