• Title/Summary/Keyword: Ceramic Membrane

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Hydrogen Permeance of Ce1-xYxO2-δ Membranes According to Yttrium Content

  • Song, Da-Heoi;Jung, Mie-Won
    • Journal of the Korean Ceramic Society
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    • v.50 no.6
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    • pp.451-453
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    • 2013
  • Porous ceramic membranes consisting of $Ce_{1-x}Y_xO_{2-{\delta}}$ were developed for hydrogen permeation tests. Various amounts (x = 0, 0.05, 0.1, 0.2) of yttrium were doped to ceria to study the effect of yttrium doping on ceria membranes on various properties, including hydrogen permeability. $Ce_{1-x}Y_xO_{2-{\delta}}$ powder was synthesized by the sol-gel method. These membranes were fabricated by pressing and sintering at $1300^{\circ}C$ for 6 h. As the amount of yttrium increased, the grain size of the membrane decreased. Hydrogen permeability was improved as the yttrium content increased. Selective permeability of hydrogen compared to CO is explained by electric conductivity. As the temperature rose, both the hydrogen perm-selectivity and electric conductivity on $Ce_{0.8}Y_{0.2}O_{1.9}$ improved.

Microstructure and Pore Size Control of Silica Membrane for Gas Separation at Elevated Temperatures

  • Lee Kew-Ho;Sea Bongkuk;Lee Dong-Wook
    • Korean Membrane Journal
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    • v.7 no.1
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    • pp.42-50
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    • 2005
  • Among ceramic membranes developed to date, amorphous silica membranes are attractive for gas separation at elevated temperatures. Most of the silica membranes can be formed on a porous support by sol-gel or chemical vapor deposition (CVD) process. To improve gas permselectivity of the membrane, well-controlled pores having desired size and chemical affinity between permeates and membrane become important factors in the preparation of membranes. In this article, we review the literature and introduce our technologies on the microstructure to be solved and pore size control of silica membranes using sol-gel and CVD methods.

Characterizations of Membrane for Water Treatment: Surface Charge Analysis by Electrophoresis and Acidity Measurements

  • Yongki Shim;Lee, Sangyoup;Moon, Seung-Hyeon;Jaeweon Cho
    • Korean Membrane Journal
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    • v.2 no.1
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    • pp.56-59
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    • 2000
  • The surface charge properties of a polymeric NF and a ceramic UF membranes were characterized in terms of zeta potential and acidity. Both the negative zeta potential and acidity values increased as pH increases due to ionizable acidic functional groups. Increased ionic strength reduced the acidity of the negatively-charged membrane surface as anticipated. Through these results, it can be envisioned are used to reject solutes with ionizable functional groups. Fouling of the negatively-charged membrane with natural organic matter (NOM) having a negative charge density was also investigated with respect to the surface charge. The surface charge of the NF membrane increased negatively when greater NOM adsorption onto the membrane surface occured.

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Gas Permeation and Steam Stability of Ga Salt Doped Silica Membrane by Chemical Vapor Deposition (CVD 법으로 제조한 실리카 막의 Ga 염 첨가에 따른 스팀안정성 및 기체투과특성)

  • Ryu, Seung Hee;Lee, Yong Taek
    • Membrane Journal
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    • v.22 no.6
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    • pp.424-434
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    • 2012
  • In this study, a ceramic membrane was prepared by CVD. Tube type alpha alumina support was used for substrate and added the Ga salt in intermediate layer. Synthesized method was counter diffusion CVD method at $650^{\circ}C$ with tetramethylorthosilane (TMOS). Gas permeation was measured at $600^{\circ}C$ using single-component $H_2$, $N_2$, $CO_2$ and $CH_4$. During the steam treatment, $H_2/N_2$ permselectivity of non-Ga silica membrane was decreased 926 to 829 at $600^{\circ}C$. On the other hand $H_2/N_2$ permselectivity of added Ga silica membrane was stable 910 to 904 at $600^{\circ}C$. These results show that the metal-doped membranes improved steam stability for gas separation.

Tubular Alumina Microfiltration Membrane System with Periodic N2-back-flushing for Water Treatment

  • Park, Jin-Yong;Park, Seong-Jae;Kim, Geun-Su
    • Korean Membrane Journal
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    • v.10 no.1
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    • pp.26-32
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    • 2008
  • The Gongji stream water of Chuncheon city was filtrated by 2 kinds of tubular alumina ceramic MF membranes with periodic $N_2$-back-flushing. $N_2$-back-flushing time (BT) was changed in $0{\sim}50$ sec at fixed filtration time (FT), or back-flushing period, of 4 min for NCMT-5231 membrane ($0.05\;{\mu}m$). Then, FT was changed in $0{\sim}32$ min at fixed BT of 40 sec for NCMT-7231 $0.1{\mu}m)$). In the viewpoints of total permeate volume ($V_T$), dimensionless permeate flux ($J/J_0$) and resistance of membrane fouling ($R_f$), the optimal $N_2$-BT was 50 sec, which was the longest BT, at 4 min FT for NCMT-5231. It means the longest BT was the most effective to minimize the membrane fouling, and we could acquire the most $V_T$. But the optimal FT for NCMT-7231 was 16 min in the viewpoint of $V_T$, and was 8 min in the viewpoints of $J/J_0$ and $R_f$ at fixed BT of 40 sec. The rejection rates were excellent as $80.6{\sim}96.6\;%$ for turbidity, $35.2{\sim}58.4%$ for $NH_3$-N, $16.3{\sim}45.2%$ for T-P and $16.3{\sim}45.2%$ for $COD_{Mn}$. However, the rejection rate of T-N was very low as $2.7{\sim}13.4%$ and it of TDS below 6.1%.

Hybrid Water/Wastewater Treatment Process of Membrane and Photocatalyst (분리막 및 광촉매의 혼성 정수/하수 처리 공정)

  • Park, Jin Yong
    • Membrane Journal
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    • v.28 no.3
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    • pp.143-156
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    • 2018
  • In this review article, hybrid water/wastewater treatment processes of membrane and photocatalyst were summarized from papers published in various journals. It included (1) membrane photoreactor (MPR), (2) fouling control of a membrane coupled photocatalytic process, (3) photocatalytic membrane reactors for degradation of organic pollutants, (4) integration of photocatalysis with membrane processes for purification of water, (5) hybrid photocatalysis and ceramic membrane filtration process for humic acid degradation, (6) effect of $TiO_2$ nanoparticles on fouling mitigation of ultrafiltration membranes for activated sludge filtration, (7) hybrid photocatalysis/submerged microfiltration membrane system for drinking water treatment, (8) purification of bilge water by hybrid ultrafiltration and photocatalytic processes, and (9) Hybrid water treatment process of membrane and photocatalyst-coated polypropylene bead.

Preparation of a ultrathin hollow fiber ceramic microfiltration membrane (초극세 중공사형 세라믹 정밀여과막 제조)

  • Park, In-Hwan;Kim, In-Chul;Lee, Kew-Ho
    • Proceedings of the Membrane Society of Korea Conference
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    • 2004.05b
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    • pp.144-146
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    • 2004
  • Various polymeric hollow fiber membranes have been prepared and been used widely due to their high surface area per unit volume and high permselectivity. However, the organic materials are only limited to mild operating conditions because of their weak thermal stability and ease of fouling.(omitted)

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Application of Ceramic Membrane (세라믹 분리막의 응용)

  • 김은옥
    • Membrane Journal
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    • v.3 no.1
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    • pp.12-21
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    • 1993
  • 세라믹 분리막은 알루미나($Al_2O_3$), 지르코니아($ZrO_2$), Carbon, 실리콘 카바이드, 스테인레스 등의 무기재료를 이용하여 제조된 분리막이다. 압출성형공정으로 제조된 지지체는 1700$^{\circ}C$ 이상의 소결공정을 거치므로 지지체 상단에 슬러리 코팅공정으로 형성된 얇은 막에게 안정된 분리기능을 수행할 수 있도록 커다란 물리적 강도를 제공한다. 따라서, 세라믹 분리막은 다공성 세라믹 구조를 갖는 특징적인 두 개 또는 세 개의 균일한 층으로 구성된 복합막이라 할 수 있다.

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Textile Wastewater Treatment by MF-UF Combined Membrane Filtration (MF-UF 분리막 복합공정에 의한 염색가공 폐수처리)

  • Yang, Jeongmok;Park, Chulhwan;Lee, Byunghwan;Kim, Sangyong
    • Clean Technology
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    • v.12 no.3
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    • pp.151-156
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    • 2006
  • Combined membrane process of ceramic microfiltration (MF) and polymer ultrafiltration (UF) was optimized for the removal of color and total organic carbon (TOC) from textile wastewater. Membrane regeneration was performed for the efficient operation by backflushing and chemical cleaning. Flux of 10.3% increased by the pulse backflushing of 1 second every 2 minutes in ceramic microfiltration. Membrane regeneration of 97% was obtained by chemical cleaning with 0.1% sodium hydroxide in polymer ultrafiltration. The removal efficiency of TOC, color and SS (suspended solid) were 84.6%, 97.4% and 100%, respectively. The combined process was found to be suitable for the removal of color and residual organics from textile wastewater.

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