• 제목/요약/키워드: Si melt infiltration

검색결과 32건 처리시간 0.025초

반응용융 침투법에 의한 $Al_2O_3/AL$복합재료의 제조 및 기계적 특성 평가 (Fabrication and mechanical properties of $Al_2O_3/AL$ composites by reactive melt infiltration)

  • 윤여범;김송희;태원필
    • 한국결정성장학회지
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    • 제7권4호
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    • pp.610-618
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    • 1997
  • 반응용침법으로 제조된 $Al_2O_3$/Al 복합재료는 900-$1200^{\circ}C$의 온도범위에서 $Al_2O_3$ 분말성형체에 용융Al을 침투시켜 제조하였다. 용융침투는 각 온도에서 잠복기를 거친후 발생하였으며, 복합재료의 성장속도는 시간에 따라 선형적으로 비례하였다. 제조된 복합재료의 주성분은 $Al_2$O$_3$와 Al이었고 소량의 Si이 탐지되었다. 복합재료의 상대밀도는 $Al_2O_3$ 입자크기가 증가함에 따라 증가하였고 용융 침투온도가 높을수록 감소하였다.

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반응소결 탄화규소 다공체의 기계적 특성 (Mechanical Properties of Porous Reaction Bonded Silicon Carbide)

  • 황성식;박상환;한재호;한경섭;김찬목
    • 한국세라믹학회지
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    • 제39권10호
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    • pp.948-954
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    • 2002
  • 차세대 발전 시스템에서 사용되는 고온 가스 필터용 지지층 소재를 제조하기 위하여 용융 Si 침윤 방법으로 기공율이 32∼36%, 주기공 크기가 37∼90 ${\mu}m$ 범위를 갖는 고강도 다공질 반응소결 탄화규소(RBSC)를 개발하였다. 반응소결 탄화규소 다공체의, 최대 파괴강도는 120MPa이었으며, 용융 Si 침윤 방법으로 제조된 반응소결 탄화규소 다공체에서는 SiC 입자 사이에 SiC/Si로 이루어진 기지상이 형성되어 있기 때문에 파괴 강도 및 열충격 특성이 점토 결합 탄화규소 다공체 보다 우수하였다. 반응소결 탄화규소 다공체의 기공율 및 기공 크기는 잔류 Si의 양 및 성형체에 사용한 SiC 입자 크기에 따라 다르게 나타났다.

반응소결에 의한 $SiC/MoSi_2$ 복합체의 특성 (Properties of $SiC/MoSi_2$ Composites Prepared by Reaction Sintering Method)

  • 한인섭;양준환;서동수
    • 한국세라믹학회지
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    • 제31권4호
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    • pp.399-406
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    • 1994
  • The SiC/MoSi2 composite material was prepared by infiltration with the mixture of metal Si and MoSi2 into the preform of $\alpha$-SiC and graphite under the vacuum atmosphere of 10-1 torr. The mechanical properties, phases and microstructural characteristics have been investigated by employing an universal testing machine, scanning electron microscope and X-ray diffractometer. With the increase of MoSi2/Si mixing content, the quantity of the residual silicon phase was decreased and the hardness and fracture toughness of composite materials were increased. Also, as the infiltration temperature increased, a lot of fine-grained $\beta$-SiC phases, which were produced from the reaction of graphite and liquid silicon melt, were transformed to $\alpha$-SiC phases.

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용융 Si 침윤방법에 의한 반응소결 탄화규소 고온가스 필터의 제조 및 특성 (Fabrication and Properties of Reaction Bonded SiC Hot Gas Filter Using Si Melt Infiltration Method)

  • 황성식;김태우
    • 한국세라믹학회지
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    • 제40권9호
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    • pp.891-896
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    • 2003
  • IGCC 발전 시스템에 사용되는 고온 가스 필터에 대하여 용융 Si 침윤공정 방법을 사용한 고강도 반응소결 탄화규소 고온 가스 필터 제조 공정이 개발되었다. 용융 Si 침윤 반응으로 제조된 반응소결 탄화규소의 상온 및 고온 파괴강도는 약 50-123, 60-66 MPa이었으며, 반응소결 탄화규소 다공체의 평균기공크기 및 기공율의 범위는 각각 60- 70 $\mu\textrm{m}$ 및 약 34 vol%이었다. 용융 Si 침윤 방법으로 제조된 반응 소결 탄화 규소 다공체에서는 SiC 입자 사이에 SiC/Si으로 이루어진 기지 상이 형성되어 고온 파괴 강도가 점토 결합 탄화 규소 다공체보다 우수하였다. 소결된 지지층 위에 Si 분말이 첨가되지 않은 slurry를 사용하여 여과층을 제조하였다. 여과층에 사용된 Sic 입자의 크기가 10$\mu\textrm{m}$에서 34 $\mu\textrm{m}$로 증가됨에 따라 SiC 입자 사이에 형성된 기지상의 두께가 증가하였다. 분진이 포함된 유체의 face velocity 변화에 따른 압손의 관계는 US filter사 Schumacher type 20 filter의 기체 유동 특성과 비슷하게 나타났으며, 분진여과 측정시 4분 내에 누출 분진의 크기가 1 $\mu\textrm{m}$ 크기 이하로 감소되었다.

용탕교반법에 의한 SiC 입자강화 Mg기 복합재료의 기계적 특성 (Mechanical Properties of SiC Particulate Reinforced Mg Matrix Composites Fabricated by Melt Stirring Method)

  • 임석원;장융랑;박용진
    • 한국주조공학회지
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    • 제13권5호
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    • pp.441-449
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    • 1993
  • SiC particulate reinforced magnesium matrix composites were fabricated by melt stirring method. The effet of several factors on mechanical properties and the efficiency of melt stirring method from the viewpoint of these properties were investigated. The tensile strength increased and the elongation decreased with decrease of the particle size or the increase of the paticulate volume fraction for pure magnesium matrix and Mg-5%Zn alloy matrix composites. A longer stirring time improved the tensile strength of these composites. The tensile strength of Mg-5%Ca alloy matrix composites which shows no uniform paticulate distribution was a little lower than that of matrix alloy. Rapid solidification rate is preferred for the improved tensile strength of these composites. The pure magnesium matrix and Mg-5%Zn alloy matrix composites have tensile strength of about 400MPa. This value agrees with the tensile strength of some magnesium matrix composites fabricated by liquid infiltration method or powder metallurgy method at the same volume fraction of reinforcements of whisker or particle. Therefore, the melt stirring method which has the advantages of simple process is considered to be efficient in fabricating magnesium matrix composites.

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Y2O3 첨가 탄소 프리폼에 Si 용융 침투에 의해 제조한 반응 소결 탄화규소 (RBSC Prepared by Si Melt Infiltration into the Y2O3 Added Carbon Preform)

  • 장민호;조경식
    • 한국분말재료학회지
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    • 제28권1호
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    • pp.51-58
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    • 2021
  • The conversion of carbon preforms to dense SiC by liquid infiltration is a prospectively low-cost and reliable method of forming SiC-Si composites with complex shapes and high densities. Si powder was coated on top of a 2.0wt.% Y2O3-added carbon preform, and reaction bonded silicon carbide (RBSC) was prepared by infiltrating molten Si at 1,450℃ for 1-8 h. Reactive sintering of the Y2O3-free carbon preform caused Si to be pushed to one side, thereby forming cracking defects. However, when prepared from the Y2O3-added carbon preform, a SiC-Si composite in which Si is homogeneously distributed in the SiC matrix without cracking can be produced. Using the Si + C → SiC reaction at 1,450℃, 3C and 6H SiC phases, crystalline Si, and Y2O3 were generated based on XRD analysis, without the appearance of graphite. The RBSC prepared from the Y2O3-added carbon preform was densified by increasing the density and decreasing the porosity as the holding time increased at 1,450℃. Dense RBSC, which was reaction sintered at 1,450℃ for 4 h from the 2.0wt.% Y2O3-added carbon preform, had an apparent porosity of 0.11% and a relative density of 96.8%.

완전 탄소 프리폼으로부터 Si 용융 침투에 의해 제조한 반응 소결 탄화규소의 치밀화에 미치는 Y2O3 첨가량의 영향 (Effect of Y2O3 Additive Amount on Densification of Reaction Bonded Silicon Carbides Prepared by Si Melt Infiltration into All Carbon Preform)

  • 조경식;장민호
    • 한국재료학회지
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    • 제31권5호
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    • pp.301-311
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    • 2021
  • The conversion of all carbon preforms to dense SiC by liquid infiltration can become a low-cost and reliable method to form SiC-Si composites of complex shape and high density. Reactive sintered silicon carbide (RBSC) is prepared by covering Si powder on top of 0.5-5.0 wt% Y2O3-added carbon preforms at 1,450 and 1,500℃ for 2 hours; samples are analyzed to determine densification. Reactive sintering from the Y2O3-free carbon preform causes Si to be pushed to one side and cracking defects occur. However, when prepared from the Y2O3-added carbon preform, an SiC-Si composite in which Si is homogeneously distributed in the SiC matrix without cracking can be produced. Using the Si + C = SiC reaction, 3C and 6H of SiC, crystalline Si, and Y2O3 phases are detected by XRD analysis without the appearance of graphite. As the content of Y2O3 in the carbon preform increases, the prepared RBSC accelerates the SiC conversion reaction, increasing the density and decreasing the pores, resulting in densification. The dense RBSC obtained by reaction sintering at 1,500 ℃ for 2 hours from a carbon preform with 2.0 wt% Y2O3 added has 0.20 % apparent porosity and 96.9 % relative density.

침윤된 Si 및 성형체내 Carbon Source의 양이 반응소결 탄화규소 다공체의 기공률 및 파괴강도에 미치는 영향 (Effects of Amounts of Carbon Source and Infiltrated Si on the Porosity and Fracture Strength of Porous Reaction Bonded SiC)

  • 윤성호;;김영도;박상환
    • 한국세라믹학회지
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    • 제44권7호
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    • pp.381-386
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    • 2007
  • A porous reaction bonded silicon carbide (RBSC) was fabricated by a molten Si infiltration method. The porosity and flexural strength of porous RBSC fabricated in this study were dependent upon the amount of carbon source used in the SiC/carbon preform as well as the amount of Si infiltrated into the SiC/carbon preform. The porosity and flexural strength of porous RBSC were in the range of $20 vo1.{\sim}49 vo1.%$ and $38{\sim}61 MPa$, respectively. With increase of carbon contents and molten Si for infiltration, volume fraction of the pores was gradually decreased, and flexural strength was increased. The porous RBSCs fabricated with the same amount of molten Si show less residual Si around neck with increase of carbon source, as well as a new SiC was formed around neck which resulted in the decreased porosity and improvement of the flexural strength. In addition, decrease of the porosity and increase of the flexural strength were also obtained by increase of the amount of molten Si with the same amount of carbon source. However, it was found that the flexural strength of porous RBSC depends on the porosity rather than the amount of the newly formed SiC in neck phase between SiC particles used as a starting material.

용탕단조를 이용한 SiC 휘스카 강화 마그네슘복합재료의 제조 (Squeeze Casting of SiC Whisker Reinforced Magnesium Composites)

  • 장시영;신동혁;홍성길;최정철
    • 한국주조공학회지
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    • 제20권3호
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    • pp.167-172
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    • 2000
  • Squeeze casting was performed to fabricate the SiC whisker reinforced magnesium matrix composites, and the suitability of the squeeze casting for the production of the sound composites was determined by micro/macro-structures observations and tensile test. The two-directional infiltration of the melt and the removal of air during infiltration using the devised mold were necessary to produce the composites. The pressure of 100 MPa was effective for the production of composites with the SiC whisker volume fraction of 30%, but the pressure should be lower than 50 MPa in case of below 20% in the volume fraction. The SiC whiskers in the squeeze cast composites were randomly and densely aligned, and the SiC whiskers/magnesium interfaces were continuously well-bonded. The elastic modulus, 0.2% proof stress and tensile strength in the composite were about 2.5times, l0times and 4times as large as those of magnesium, respectively, indicating that the squeeze casting sufficiently provides the high strength magnesium composites reinforced with SiC whiskers.

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