• Title/Summary/Keyword: Nano Alumina ($Al_2O_3$)

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Improvement in Mechanical Strength of α-Alumina Hollow Fiber Membrane by Introducing Nanosize γ-Alumina Particle as Sintering Agent (소결조제로 나노크기 γ-알루미나 입자의 도입에 따른 α-알루미나 중공사 분리막의 기계적 강도 향상)

  • Kim, Yong-Bin;Kim, Min-Zy;Arepalli, Devipriyanka;Cho, Churl-Hee
    • Membrane Journal
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    • v.32 no.2
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    • pp.150-162
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    • 2022
  • In the field of water treatment and pharmaceutical bio an alumina hollow fiber membrane used for mixture separation. However, due to the lack of strengths it is very brittle to handle and apply. Therefore, it is necessary to study and improve the bending strength of the membrane to 100 MPa or more. In this study, as the mixing ratio of the nano-particles increased to 0, 1, 3, and 5 wt%, the viscosity of the fluid mixture increased. The pore structure of the hollow membrane produced by interrupting the diffusion exchange rate of the solvent and non-solvent during the spinning process suppresses the formation of the finger-like structure and gradually increases the ratio of the sponge-like structure to improve the membrane mechanical strength to more than 100 MPa. As a result, an interparticle space was ensured to improve the porosity of the sponge-like structure with high permeability, and it showed excellent N2 permeability of about 100000 GPU and high water permeability of 3000 L/m2 h. Therefore, it can be concluded, that the addition of γ-Al2O3 nanoparticles as sintering aid is an important method to enhance the mechanical strength of the α-alumina hollow fiber membrane to maintain high permeability.

Wear Characteristics of SiC by Sintered Temperature and SiO2 Contents (소결온도 및 SiO2 첨가량에 따른 탄화규소의 마모 특성)

  • Park, Sung-Ho;Park, Won-Jo;Yoon, Han-Ki
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.32 no.11
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    • pp.1003-1009
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    • 2008
  • In this study, liquid phase sintered SiC (LPS-SiC) materials were made by hot pressing method. The particle size of nano-SiC powder was 30nm. Alumina ($Al_2O_3$), yttria ($Y_2O_3$) and silica ($SiO_2$) were used for sintering additives. To investigate effects of $SiO_2$, ratios of $SiO_2$ contents were changed by five kinds. Materials have been sintered for 1 hour at $1760^{\circ}C$, $1780^{\circ}C$ and $1800^{\circ}C$ under the pressure of 20MPa. The system of sintering additives which affects a property of sintering as well as the influence depending on compositions of sintering additives were investigated by measurement of density, mechanical properties such as flexural strength, vickers hardness and sliding wear resistance were investigated to make sure of the optimum condition which is about matrix of $SiC_f$/SiC composites. The abrasion test condition apply to load of 20N at 100RPM for 20min. Sintered density, flexural strength of fabricated LPS-SiC increased with increasing the sintering temperature. And in case of LPS-SiC with low $SiO_2$, sliding wear resistance has very excellent. Monolithic SiC $1800^{\circ}C$ sintering temperatures and 3wt% have excellent wear resistance.

Densification Mechanism of NITE-SiC and $SiC_f/SiC$ Composites

  • Yoon, Han-Ki;Lee, Young-Ju;Park, Yi-Hyun;Park, Jun-Soo;Kohyama, A.
    • Proceedings of the Korea Committee for Ocean Resources and Engineering Conference
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    • 2006.11a
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    • pp.181-184
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    • 2006
  • Nano Infiltration Transient Eutectic Phase - Silicon Carbide (NITE-SiC) and $SiC_f/SiC$ composite have been fabricated by a Hot Pressing (HP) process, using SiC powder with an average size of about 30nm. Alumina ($Al_2O_3$) and Yttria ($Y_2O_3$) were used for additives materials. These mixed powders were sintered at the temperature a of $1300^{\circ}C$, $1650^{\circ}C$, $1800^{\circ}C$ and $1900^{\circ}C$ under an applied pressure of 20MPa. And unidirection and two dimension woven structures of $SiC_f/SiC$ composites were prepared starting from Tyranno SA fiber. Densification of microstructure gives an effect to density. Specially, Densification Mechanism basically is important from the sintering which use the HP. In this study, the densification of NITE-SiC and $SiC_f/SiC$ composite mechanism by a press displacement appears investigated. The mechanism on the densification of each sintering temperature was investigated. The each step is shows a with each other different mechanism quality.

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In-situ Monitoring for hybridization between GPS and Alumina Nano Sols (알루미나 나노 졸과 GPS와의 하이브리드화 과정 분석)

  • 황영영;김재홍;석상일
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2003.03a
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    • pp.243-243
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    • 2003
  • 무기 나노 입자와 유기물간의 균일한 화학적 결합으로 제조된 나노 구조형 재료는 수많은 용도에 부응할 수 있는 기계적, 전기적 및 광학적 특성을 설계, 제조하는데 유용한 방법으로 사용되고 있다. 이중 화학적 습식 졸-겔 공정은 나노 구조형 유/무기 하이브리드 재료 제조에 매우 효과적인 방법으로 알려져 있으며 내부식성 금속 코팅막, 내 스크래치 코팅막 제조에 활용되고 있다. 그러나 무기 나노 졸 입자와 유기물과의 매개로 작용하는 커플링제와의 하이브리드 과정에 대한 정보는 극히 조금 알려져 있다. 본 연구에서는 알루미나 나노 졸과 GPS((3-glycidoxypropyl-triethoxysilane)와의 하이브리드 생성 과정을 이온 전도도 측정으로 관찰한 결과를 보고하고자 한다. 알루미나 나노 졸은 Al(NO$_3$)$_3$.9$H_2O$ 수용액에 NH$_4$OH를 가하여 침전물을 얻고 여과 및 수세하여 졸 입자의 함량이 약 5 wt%가 되게 이온교환수와 해교제인 초산을 소량 가하여 10$0^{\circ}C$에서 약 50시간 열처리하는 방법으로 제조하였다. 알루미나 졸 입자와 GPS와의 결합 과정을 reactor FT-IR로 시간에 파라 연속적으로 분석하여 그 반응 경로를 이온 전기전도와 비교하여 논의 될 것이다. 아래 그림 1은 알루미나 나노 졸에 GPS를 첨가한 후 시간에 따라 얻어진 이온 전기전도도를 나타낸 그림이다.

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