• Title/Summary/Keyword: 반응소결 탄화규소

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IGCC용 반응소결용 SiC 고온 가스 필터 개발

  • Park, Sang-Hwan;Han, Jae-Ho;Gwon, Hyeok-Bo;Choe, Ju-Hong
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.11a
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    • pp.446-461
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    • 2005
  • 본 연구에서는 반응소결 탄화규소 다공질 지지체 개발을 위하여 SiC/C로 이루어진 성형체를 사용한 Si melt infiltration 공정 및 SiC/C/Si으로 이루어진 성형체를 사용하는 Si embedding 공정 개발이 이루어졌다. 개발된 반응소결 탄화규소 다공질 지지체의 기공률은 38% 이상이었으며 평균기공은 130 ${\mu}m$ 크기이었다. Si melt infiltration 방법으로 제조된 반응소결 탄화규소 다공질 지지체의 파괴강도는 상용 반응소결 탄화규소 지지체의 파괴강도보다 최대 200% 이상 높게 나타났다. 본 연구에서는 용융 Si의 침윤공정을 이용하여 반응소결 탄화규소 여과층을 갖는 반응소결 탄화규소 필터 및 그 제조공정이 개발되었다. 개발된 반응소결 탄화규소 필터의 필터 특성은 상용 탄화규소 필터의 필터 특성과 대체적으로 대등한 것으로 조사되었다.

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Silicon Melt Infiltration of Reaction-Bonded Silicon Carbide (반응소결 탄화규소에서 실리콘의 침윤향상)

  • 신현익;김주선;이종호;김긍호;송휴섭;이해원
    • Journal of the Korean Ceramic Society
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    • v.39 no.7
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    • pp.693-698
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    • 2002
  • Reaction-Bonded Silicon Carbide (RBSC) Ceramics were fabricated which satisfies the maximum packing density of silicon carbide skeleton in the green compacts. Such a high packing density induced incomplete infiltration during reaction-sintering; forms linear void around the interface of large alpha silicon carbide powders. During reaction-sintering, the limited extraction and entrapped gas induced by residue oxide was considered to be a reason of linear void formation. In order to improve infiltration behavior in the highly packed preform, the pre-treatment methods for residue oxide removal were proposed.

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

  • 황성식;김태우
    • Journal of the Korean Ceramic Society
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    • v.40 no.9
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    • pp.891-896
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    • 2003
  • Novel fabrication technique was developed for high strength Reaction-Bonded SiC (RBSC) hot gas filter for use in IGCC (Integrated Gasification Combined Cycle) system. The room and high temperature fracture strengths for Si-melt infiltrated reaction-bonded SiC were 50-123, and 60-66 MPa, respectively. The average pore size was 60-70 $\mu\textrm{m}$ and the porosity was about 34 vol%. RBSC infiltrated with molten silicon showed improved fracture strength at high temperature, as compared to that of clay-bonded SiC, due to SiC/Si phase present within SiC phase. The thickness for SiC/Si phase was increased with increasing powder particle size of SiC from 10 to 34 $\mu\textrm{m}$. Pressure drop with dust particles showed similar response as compared to that for Schumacher type 20 filter. The filter fabricated in the present study showed good performance in that the filtered powder size was reduced drastically to below 1 $\mu\textrm{m}$ within 4 min.

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

  • Hwang, Sung-Sic;Park, Sang-Whan;Han, Jae-Ho;Han, Kyung-Sop;Kim, Chan-Mook
    • Journal of the Korean Ceramic Society
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    • v.39 no.10
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    • pp.948-954
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    • 2002
  • Porous reaction bonded SiC with high fracture strength was developed using Si melt infiltration method for use of the support layer in high temperature gas filter that is essential to develop the next generation power system such as integrated gasification combined cycle system. The porosity and pore size of porous RBSC developed in this study were in the range of 32∼36% and 37∼90 ${\mu}m$ respectively and the maximum fracture strength of porous RBSC fabricated was 120 MPa. The fracture strength and thermal shock resistance of porous RBSC fabricated by Si melt infiltration were much improved compared to those of commercially available porous clay bonded SiC due to the formation of the strong SiC/Si interface between SiC particles. The characteristics of pore structure of porous RBSC was varied depending on the amounts of residual Si as Well as the size of SiC particle used in green body.

Effect of Green Microstructure on Sintered Microstructure and Mechanical Properties of Reaction-Bonded Silicon Carbide (성형미세구조가 반응소결 탄화규소체의 소결미세구조 및 기계적 특성에 미치는 영향)

  • 박현철;김재원;백운규;최성철
    • Journal of the Korean Ceramic Society
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    • v.36 no.1
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    • pp.97-105
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    • 1999
  • In the binary system of SiC and carbon, porosity and pore size distribution of green body was controlled by varying pH, by the addition of polyelectrolyte dispersants, and by using different particle size of starting powders. The preforms having different green microstructure were fabricated by slip casting from suspensions having different dispersion condition. The reaction bonding process was carried out for these preforms. The condition of reaction bonding was 1600$^{\circ}C$ and 20 min. under vacuum atmosphere. The analyses of optical and SEM were studied to investigate the effect of green microstructure on that of reaction bonded silicon carbide and subsequently the mechanical properties of sintered body was investigated. Different green microstructures were obtained from suspensions having different dispersion condition. It was found that the pore size could be remarkably reduced for a fine SiC(0.5$\mu\textrm{m}$). The bimodal microstructure was not found in the present study, which is frequently observed in the typical reaction bonded silicon carbide. It is considered that the ratio between SiC and C was responsible for the formation of bimodal microstructure. For the preform fabricated from the well dispersed suspension, the 3-point bending strength of reaction-bonded silicon carbide was 310${\pm}$40 MPa compared to the specimen fabricated from relatively agglomerated particles having lower value 260${\pm}$MPa.

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CHARACTERIZATION OF MONOLITHIC RS-SiC AND RS-$SiC_f/SiC$ COMPOSITE MATERIALS (반응소결 SiC 재료와 $SiC_f/SiC$ 복합재료의 특성)

  • Jin, Joon-Ok;Lee, Sang-Pill;Lee, Jin-Kyung;Yoon, Han-Ki;Khoyama, Akira
    • Proceedings of the KSME Conference
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    • 2003.04a
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    • pp.376-380
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    • 2003
  • The microstructure and the mechanical properties of RS-SiC and RS-$SiC_f/SiC$ materials have been investigated in conjunction with the content of residual silicon and porosity. The mechanical properties of RS-SiC materials suffered from the thermal exposure were also examined. RS-SiC based materials bave been fabricated using the complex matrix slurry with different composition ratios of SiC and C panicles. The characterization of RS-SiC based materials was investigated by means of SEM, EDS ~d three point bending test. Based on the mechanical property-microstructure correlation, the high temperature applicability of RS-SiC based materials was discussed.

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