• 제목/요약/키워드: AlC

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$Al_2O_3-C$계 내화물에서 알루미늄 금속분말의 산화억제 메카니즘 (Antioxidation mechanism of Al metal powders on $Al_2O_3-C$ refractory)

  • 류정호;임창성;오근호
    • 한국결정성장학회지
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    • 제8권1호
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    • pp.97-105
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    • 1998
  • $Al_2O_3-C$계 내화물에 Al 금속분말을 첨가하여 $800^{\circ}C$에서 $1400^{\circ}C$의 온도영역에서 탄소의 산화억제 메카니즘을 조사하였다. 탄소의 산화는 Al 금속분말을 5wt% 첨가한 $Al_2O_3-C-Al $ 시편에서 억제되었으며, 시편의 표면과 내부계면에 탄소가 비교적 균일하게 분포되어 있었다. Al-C 시편의 조성에서 중간생성물인 $Al_4C_3$ 및 AlN이 $800-1200^{\circ}C$의 온도범위에서 존재하였으며, $1400^{\circ}C$ 이상의 고온에서 모두 $Al_2O_3$로 전이하였다. $1000^{\circ}C$에서 1시간 가열한 Al-C 시편에서 $Al_4C_3$의 생성과 관계있는 cavity structure가 관찰되었다. 열역학적 고찰을 기초로 하여 산환억제 효과와 관계있는 $Al_4C_3$와 AlN의 생성, $Al_2O_3$로의 전이, C(s)의 형성등이 논하였다.

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고온 반응에 의한 Ti3AlC2합성 (Reaction Synthesis of Ti3AlC2 at High Temperature)

  • 황성식;박상환;한재호;한경섭;김태우
    • 한국세라믹학회지
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    • 제40권1호
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    • pp.87-92
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    • 2003
  • 출발 물질로 TiCx(x=0.67)와 Al 분말을 사용하여 800~150$0^{\circ}C$ 온도 구간에서 상압 또는 가압 반응으로 Ti$_3$AlC$_2$를 합성하였다. 출발 물질로 TiCx(x=0.67)와 Al 분말을 사용한 반응 합성에서는 Ti-Al intermetallic compound 또는 Al-C compound와 같은 중간 형성물은 형성되지 않았으며 Ti$_3$AlC$_2$을 합성할 수 있었다. TiCx(x=0.67)와 용융 Al의 직접 반응으로 80$0^{\circ}C$에서는 Ti$_2$AlC 상이 합성되었으며, 1200~150$0^{\circ}C$ 반응온도 구간에서는 Ti$_3$AlC$_2$ 상이 우선적으로 합성되었다. 저온에서 합성된 Ti$_2$AlC 상은 고온에서 TiC와 반응으로 Ti$_3$AlC$_2$ 상으로 합성되었다. 본 연구에서는 출발 물질로 TiCx와 Al을 사용한 Ti$_3$AlC$_2$ 상의 합성기구를 제시하였다. 합성된 Ti$_3$AlC$_2$의 미세구조는 Ti$_3$AlC$_2$ 상으로 이루어진 결정립이 45~120nm크기로 적층된 구조를 갖는다.

반응결합 소결에 의한 SiC-TiC계 복합재료 제조 (Manufacture of SiC-TiC System Composite by the Reaction-Bonded Sintering)

  • 한인섭;김홍수;우상국;양준환;정윤중
    • 한국세라믹학회지
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    • 제31권8호
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    • pp.849-860
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    • 1994
  • The microstructural evolution and crystalline phases of this infiltration of Ti+Al liquids in TiC, SiC, TiC+C, and SiC+C preforms have been investigated. As the Ti and Al mixing ratio in Ti+Al infiltrated liquid changes, the newly formed reaction products, which were reacted from the Ti+Al liquid with preforms, consisted of three major phases as Ti3AlC, Al2Ti4C2 or Al4C3. The TiC grain shape was changed to spheroid, when Ti3AlC was formed. In case of Al2Ti4C2 formation, the platelet grain was formed from the original TiC grain. When Al4C3 was formed, nodular or intergranular fine-grained Al4C3 was formed around the TiC grain, while the original TiC grain shape was not changed.

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SiC와 TiC 입자를 함유하는 Al2O3 입자복합체의 균열저항거동과 기계적 성질 (R-Curve Behavior and Mechanical Properties of Al2O3 Composites Containing SiC and TiC Particles)

  • 나상웅;이재형
    • 한국세라믹학회지
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    • 제39권4호
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    • pp.413-419
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    • 2002
  • $Al_2O_3$/TiC/SiC, $Al_2O_3$/SiC 및 $Al_2O_3$/TiC 복합체들을 고온가압소결로 제조하여 이들의 균열저항거동과 기계적 성질을 비교해 보았다. $Al_2O_3$$0.8{\mu}m$의 TiC가 30vol% 첨가된 $Al_2O_3$/TiC는 단일체 $Al_2O_3$와 비슷한 균열저항거동을 보이며 파괴인성은 전반적으로 10% 이내의 증가를 보이는데 그쳤지만 강도는 약 30% 증가하였다. $Al_2O_3$$3{\mu}m$ SiC가 30vol% 첨가된 $Al_2O_3$/SiC는 SiC 입자의 균열 접속으로 인해 증가하는 균열저항거동을 뚜렷이 보이면서 파괴인성이 긴 균열에서 약 75% 증가하였으나 강도는 다소 감소했다. $Al_2O_3$/TiC에 SiC 입자가 30 vol% 첨가된 $Al_2O_3$/TiC/SiC 복합체의 경우 단일체 $Al_2O_3$에 비해 긴 균열 거리에서 파괴인성이 50% 이상 증가된 6.6 MP${\cdot}\sqrt{m}$에 이르렀으며 강도 값도 약 20% 상승하였다. 그러나 큰 SiC 입자의 첨가로 인해 TiC 입자만 첨가된 $Al_2O_3$/TiC 복합체보다는 강도가 다소 낮았다. 또한 SiC 입자만 첨가된 $Al_2O_3$/SiC 복합체보다는 파괴인성이 다소 낮았는데, 이는 작은 TiC 입자들이 SiC 입계를 거칠게 만들어 균열접속을 일으키는 SiC 입자의 뽑힘 현상을 방해하였기 때문이다.

$Al/SiC/Al_{2}O_{3}$복합재료의 기계적 성질 및 마멸특성 (Mechanical Properties and Wear Behaviour of $Al/SiC/Al_{2}O_{3}$ Composite Materials)

  • 임흥준;김영한;한경섭
    • 대한기계학회논문집
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    • 제17권10호
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    • pp.2498-2508
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    • 1993
  • $Al/SiC/Al_{2}O_{3}$ hybrid composites are fabricated by squeeze infiltration method. From the misconstructive of $Al/SiC/Al_{2}O_{3}$ hybrid composites fabricated by squeeze infiltration method, uniform distribution of reinforcements and good bondings are found. Hardness value of $Al/SiC/Al_{2}O_{3}$ hybrid composites increases linearly with the volume fraction of reinforcement because SiC whisker and $Al_{2}$O$_{3}$ fiber have an outstanding hardness. Optimal aging conditions are obtained by examining the hardness of $Al/SiC/Al_{2}O_{3}$ hybrid composites with different aging time. Tensile properties such as Young's modulus and ultimate tensile strength are improved up to 30% and 40% by the addition of reinforcements, respectively. Failure mode of $Al/SiC/Al_{2}O_{3}$ hybrid composites is ductile on microstructural level. Through the abrasive wear test and wear surface analysis, wear behaviour and mechanism of 6061 aluminum and $Al/SiC/Al_{2}O_{3}$ hybrid composites are characterized under various testing conditions. The addition of SiC whisker to $Al/SiC/Al_{2}O_{3}$ composites gives rise to improvement of the wear resistance. The wear resistance of $Al/SiC/Al_{2}O_{3}$ hybrid composites is superior to that of Al/SiC composites. The wear mechanism of aluminum alloy is mainly abrasive wear at low speed range and adhesive and melt wear at high speed range. In contrast, that of $Al/SiC/Al_{2}O_{3}$ hybrid composites is abrasive wear at all speed range, but severe wear when counter material is stainless steel. As the testing temperature increases, wear loss of aluminum alloy decreases because the matrix is getting more ductile, but that of $Al/SiC/Al_{2}O_{3}$ hybrid composites is hardly varied. Oil lubricant is more effective to reduce the wear loss of aluminum alloy and $Al/SiC/Al_{2}O_{3}$ hybrid composites at high speed range.

$Al_2O_3$/SiC Hybrid-Composite의 제조 (Fabrication of $Al_2O_3$/SiC Hybrid-Composite)

  • 이수영;임경호;전병세
    • 연구논문집
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    • 통권26호
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    • pp.103-112
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    • 1996
  • $Al_2O_3/SiC$ Hybrid-Composite이 일반적인 분말공정에 의하여 제조되었다. 소결시 $\gamma-Al_2O_3에서 $\alpha-Al_2O_3$로의 전이에 seed역할을 하는 $\alpha-Al_2O_3의 첨가는 균일한 미세구조를 발달시켜 강도의 증진을 가져왔다. nano size의 SiC의 첨가는 $Al_2O_3$의 소결성과 입성장에 영향을 미쳐 파괴강도의 증진을 가져왔다. $Al_2O_3/SiC$ nano-Composite에 SiC plates의 첨가는 파괴강도의 감소를 가져왔지만, 상대적으로 파괴인성은 증진되었다. SiC plates에 nitride (BN, $Si_3N_4$ 코팅을 할 경우 crack deflection을 더욱 유발하여 파괴인성이 증진되었다.

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Al-Si-SiC 복합분말과 Al-Zn-Mg계 합금분말이 혼합된 분말의 소결 거동 및 기계적 특성연구 (Investigation on the Sintering Behavior and Mechanical Properties of Al-Zn-Mg Alloy Powders Mixed with Al-Si-SiC Composite Powders)

  • 장광주;김경태;양상선;김용진;박용호
    • 한국분말재료학회지
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    • 제21권6호
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    • pp.460-466
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    • 2014
  • Al-Si-SiC composite powders with intra-granular SiC particles were prepared by a gas atomization process. The composite powders were mixed with Al-Zn-Mg alloy powders as a function of weight percent. Those mixture powders were compacted with the pressure of 700 MPa and then sintered at the temperature of $565-585^{\circ}C$. T6 heat treatment was conducted to increase their mechanical properties by solid-solution precipitates. Each relative density according to the optimized sintering temperature of those powders were determined as 96% at $580^{\circ}C$ for Al-Zn-Mg powders (composition A), 97.9% at $575^{\circ}C$ for Al-Zn-Mg powders with 5 wt.% of Al-Si-SiC powders (composition B), and 98.2% at $570^{\circ}C$ for Al-Zn-Mg powders with 10 wt.% of Al-Si-SiC powders (composition C), respectively. Each hardness, tensile strength, and wear resistance test of those sintered samples was conducted. As the content of Al-Si-SiC powders increased, both hardness and tensile strength were decreased. However, wear resistance was increased by the increase of Al-Si-SiC powders. From these results, it was confirmed that Al-Si-SiC/Al-Zn-Mg composite could be highly densified by the sintering process, and thus the composite could have high wear resistance and tensile strength when the content of Al-Si-SiC composite powders were optimized.

SiC의 산화에 의한 $Al_2O_3/SiC$ 복합체의 제조 (Fabrication of $Al_2O_3/SiC$ Composite Through Oxidation of SiC)

  • 김경환;이홍림;이형민;홍기곤
    • 한국세라믹학회지
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    • 제34권5호
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    • pp.535-543
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    • 1997
  • The surface of SiC particles were partially oxidized to produce SiO2 layers on the SiC particles to prepare Al2O3/SiC composite by formation of mullite bonds between the grains of Al2O3 and SiC during sintering at 1$600^{\circ}C$. This process is considered to enable the sintering of Al2O3/SiC composite at lower temperature and also to relieve the stress, produced by thermal expansion mismatch between Al2O3 and SiC. In fact, Al2O3/SiC composite prepared by oxidation of SiC was observed to be more effectively sintered and densified at lower temperature. Maximum density, flexural strength and microhardness were obtained with 5.65 vol% of mullite content in Al2O3/SiC composite.

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3C-SiC 버퍼층이 AlN 박막형 SAW 특성에 미치는 영향 (Effect of a 3C-SiC buffer layer on SAW properties of AlN films)

  • 황시홍;정귀상
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2009년도 하계학술대회 논문집
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    • pp.235-235
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    • 2009
  • This paper describes the influence of a polycrystalline (poly) 3C-SiC buffer layer on the surface acoustic wave (SAW) properties of poly aluminum nitride (AlN) thin films by comparing the center frequency, insertion loss, the electromechanical coupling coefficient ($k^2$), andthetemperaturecoefficientoffrequency(TCF) of an IDT/AlN/3C-SiC structure with those of an IDT/AlN/Si structure, The poly-AlN thin films with an (0002)-preferred orientation were deposited on a silicon (Si) substrate using a pulsed reactive magnetron sputtering system. Results show that the insertion loss (21.92 dB) and TCF (-18 ppm/$^{\circ}C$) of the IDT/AlN/3C-SiC structure were improved by a closely matched coefficient of thermal expansion (CTE) and small lattice mismatch (1 %) between the AlN and 3C-SiC. However, a drawback is that the $k^2(0.79%)$ and SAW velocity(5020m/s) of the AlN/3C-SiC SAW device were reduced by appearing in some non-(0002)AlN planes such as the (10 $\bar{1}$ 2) and (10 $\bar{1}$ 3) AlN planes in the AlN/SiC film. Although disadvantages were shown to exist, the use of the AlN/3C-SiC structure for SAW applications at high temperatures is possible. The characteristics of the AlN thin films were also evaluated using FT-IR spectra, XRD, and AFM images.

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제조방법에 따른 Al2O3-SiCw 복합체의 특성 (Properties of Al2O3-SiCw Composites Fabricated by Three Preparation Methods)

  • 이대엽;윤당혁
    • 한국세라믹학회지
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    • 제51권5호
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    • pp.392-398
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    • 2014
  • $Al_2O_3$-SiC composites reinforced with SiC whisker ($SiC_w$) were fabricated using three different methods. In the first, $Al_2O_3-SiC_w$ starting materials were used. In the second, $Al_2O_3-SiC_w$-SiC particles ($SiC_p$) were used, which was intended to enhance the mechanical properties by $SiC_p$ reinforcement. In the third method, reaction-sintering was used with mullite-Al-C-$SiC_w$ starting materials. After hot-pressing at $1750^{\circ}C$ and 30 MPa for 1 h, the composites fabricated using $Al_2O_3-SiC_w$ and $Al_2O_3-SiC_w-SiC_p$ showed strong mechanical properties, by which the effects of reinforcement by $SiC_w$ and $SiC_p$ were confirmed. On the other hand, the mechanical properties of the composite fabricated by reaction-sintering were found to be inferior to those of the other $Al_2O_3$-SiC composites owing to its relatively lower density and the presence of ${\gamma}-Al_2O_3$ and ${\gamma}-Al_{2.67}O_4$. The greatest hardness and $K_{1C}$ were 20.37 GPa for the composite fabricated using $Al_2O_3-SiC_w$, and $4.9MPa{\cdot}m^{1/2}$ using $Al_2O_3-SiC_w-SiC_p$, respectively, which were much improved over those from the monolithic $Al_2O_3$.