• Title/Summary/Keyword: 기체 분리막

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Gas Permaeation Characteristics of Ceramic Membranes by the Pressurized Sol-Gel Coating Techique (가압 졸-겔 코팅법에 의한 세라믹막의 기체투과 특성)

  • 현상훈;강범석
    • Proceedings of the Membrane Society of Korea Conference
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    • 1993.04a
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    • pp.35-35
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    • 1993
  • 튜브형 $\alpha-Al_2O_3$ 담체에 졸-겔 침지코팅법과 가압코팅(pressurized coating) 법으로 boehmite 졸과 극미세 입자 SiO$_2$ 및 TiO$_2$ 졸을 코팅한 후 200$\circ$C~500$\circ$C 에서 열처리하여 복합분리막을 제조하였다.

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Recent Advances in Covalent Triazine Framework based Separation Membranes (공유결합 트리아진 구조체 기반 분리막의 최근 발전)

  • Kim, Esther;Patel, Rajkumar
    • Membrane Journal
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    • v.31 no.3
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    • pp.184-199
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    • 2021
  • As a branch of covalent organic frameworks (COF), covalent triazine frameworks (CTF) are inherently porous structures composed of networks of repeating hexagonal triazine rings fabricated via the ionothermal trimerization reaction. They also contain plenty of nitrogen functional groups that increase affinity for some chemicals while rejecting others. Because of their tunable properties, many researchers have synthesized and tested CTFs for gas and liquid separation processes. Various studies of novel CTFs, mixed CTF composites, and CTF membranes have experimented for gas adsorption/separation (e.g., CO2, C2H2, H2, etc.) and desalination. Some CTF studies have determined the limits and potentials through advanced computer simulations while subsequent experiments have tested CTFs for photocatalytic properties, suggesting recyclability for greater sustainability. In this review, the covalent triazine framework-based separation membrane is discussed.

Separation of Hydrogen-Nitrogen Gas Mixture by PTMSP-Silica-PEI Composite Membranes (PTMSP-Silica-PEI 복합막에 의한 수소-질소 혼합기체 분리)

  • Lee Hyun-Kyung;Choi Youn-Jung
    • Membrane Journal
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    • v.14 no.4
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    • pp.304-311
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    • 2004
  • The poly(1-trimethylsilyl-1-propyne) (PTMSP) and silica-filled PTMSP membranes were prepared by casting from a toluene solution on porous polyetherimide (PEI). FT-IR spectrum, GPC and SEM pictures have been taken to characterize the membranes. The particle size of membrane decreases as silica content of the membrane increases from 23 to 60 wt%, and a uniform distribution of the silica is observed. The separation properties of the gas mixture (32 mol% $H_2$/ 68 mol% $N_2$) through the composite membranes were studies as a function of pressure and percentage of silica. Selectivity values of $H_2$/$N_2$ increased as the pressure of permeation cell and silica content of the membrane increased. The real separation factor($\alpha$), head separation factor($\beta$), and tail separation factor((equation omitted)) of PTMSP-PEI composite membrane were 2.28, 1.58, and 1.44 respectively at $\Delta$P 30 psi and $25^{\circ}C$. $\alpha$, $\beta$, and (equation omitted) of PTMSP-Silica-PEI composite membrane for 60 wt% silica were 3.34, 1.95, 1.72 at $\Delta$P 30 psi and $25^{\circ}C$.

1-Butyl-3-methylimidazolium tetrafluoroborate/Al2O3 Composite Membrane for CO2 Separation (이산화탄소 분리를 위한 이온성 액체 1-butyl-3-methylimidazolium tetrafluoroborate/Al2O3 복합체 분리막)

  • Yoon, Ki Wan;Kang, Sang Wook
    • Membrane Journal
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    • v.27 no.3
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    • pp.226-231
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    • 2017
  • 1-Butyl-3-methylimidazolium tetrafluoroborate ($BMIM^+BF_4{^-}$) and $Al_2O_3$ as metal oxide for preparation of composite membrane were utilized for the $CO_2$ separation. When 13 nm $Al_2O_3$ nanoparticles were incorporated into ionic liquid $BMIM^+BF_4{^-}$, the separation performance for composite membrane showed the selectivity ($CO_2/N_2$) of 30.5 and $CO_2$ permeance of 45.7 GPU. The enhanced separation performance was attributable to the increased $CO_2$ solubility by both oxide layer of $Al_2O_3$ and abundant free ions of ionic liquid. In particular, $Al_2O_3$ nanoparticles acted as obstacles to nitrogen gas, resulting in the decrease of permeability of nitrogen gas. As a result, the carbon dioxide separation performance could be enhanced.

Separation of Sulfur Dioxide by Circulatory Porous Polymer Membrane Contactor (순환식 고분자 분리막 접촉기를 이용한 이산화황 분리)

  • Lee, Yong-Taek;Jeon, Hyun-Soo;Ahn, Hyo-Seong;Song, In-Ho;Jeong, Heon-Kyu;Lee, Hyung-Keun
    • Membrane Journal
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    • v.17 no.4
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    • pp.302-310
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    • 2007
  • The effects of various system parameter on the absorption of sulfur dioxide into the absorbent liquid were investigated in a circulatory porous polymer membrane contactor. A feed gas and an absorbent used in the study were the gas mixture of air and $SO_2$ and the $Na_2SO_3$ aqueous solution, respectively. The separation of sulfur dioxide was measured in terms of the concentration of $Na_2SO_3$ absorbent, the concentration of sulfur dioxide, the feed flow rate, the absorbent velocity and the different membrane material. As the concentration of absorbent increased from 0.05 to 0.2 M, the removal efficiency increased from 74 to 100%. By increasing the concentration of sulfur dioxide from 700 to 2,500 ppm, the removal efficiency decreased from 100 to 75%. Also as the absorbent velocity increased from 2.5 to 15 mL/min, the removal efficiency increased from 85 to 100%. As the porosity of the membrane increased, the removal efficiency increased.

Preparation of Microporous Silica Membrane from TEOS-$H_2O$ System and Separation Of $H_2$-$N_2$ Gas Mixture (TEOS-$H_2O$계로부터 다공성 실리카 막의 제조 및 수소-질소 혼합기체의 분리)

  • 강태범;이현경;이용택
    • Membrane Journal
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    • v.10 no.2
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    • pp.55-65
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    • 2000
  • The porous silica membrane was prepared from Si(${OC}_2H_5)_4-H_2O$ system by sol-gel method. To investigate the characteristics of gels and porous silica membrane, we examined gels and porous silica membrane using TG-DTA, X-ray diffractometer, IR spectrophotometer, BET, SEM and TEM. The optimum mole ratio of Si(OC$_2$H$_{5}$)$_4$ : $H_2O$ $C_2$H$_{5}$OH for porous silica membrane was 1 : 4.5 : 4. The porous silica membrane was obtained by heat treatment of the gel above 700 $^{\circ}C$. The specific surface area of sintered gel was 3.8 $m^2$/g to 902.3 $m^2$/g at 100 $^{\circ}C$ to 1100 $^{\circ}C$ The pore size of sintered gel was in the range 20 $\AA$~ 50$\AA$. The particle size of sintered gel was 15 nm to 30 nm at 30$0^{\circ}C$ to 700$^{\circ}C$. The performance of the porous silica membrane was investigated for the separation of $H_2$/$N_2$ gas mixture. Gas separation through porous silica membrane depends upon Knudsen flow and surface flow. The veal separation factor($\alpha$) of $H_2$/$N_2$ was 5.17 at 155.15 cmHg and $25^{\circ}C$. The real separation factor($\alpha$), head separation factor($\beta$), and tail separation factor( $\bar{B}$) increased as the pressure of permeation cell Increased.sed.

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투과증발막을 이용한 폐수중의 유기물 제거

  • 이영무
    • Membrane Journal
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    • v.1 no.1
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    • pp.24-33
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    • 1991
  • 합성고분자막을 이용하여 액체혼합물을 분리하는 공정은 오래전부터 알려져 왔다. 바다물로부터 역삼투법이나 전기투석법을 이용하여 탈염하는 공정이라든지 한외여과 또는 정밀여과법을 이용하여 초순수를 제조하는 공정등은 현재 대단한 기술적, 상업적 의미를 갖으며 산업적으로 발전하고 있다. 더욱 최근에는 합성고분자막이 여러 기체혼합물 분리에 응용되고 있다. 예를 들면 석유화학 폐가스나 암모니아 공장에서 수소의 회수나 공기중의 산소나 질소의 부화등은 막이 아주 유용한 도구로 사용되어 온 두가지 중요한 분야이다. 고분자막이 특정한 물질분리에 맞도록 고안될수 있게 된 이래로 재래식 방법으로는 곤란한 분리문제들이 막공정에 의해 다루어질수 있게 되었다. 이같은 문제중 하나가 폐수중 유기용제등 유기물의 제거이다. 특히 할로겐화 유기물, 살충제, 농약등 오래전부터 독극물로 알려져온 물질들을 폐수로 부터 제저하는데 많은 노력이 경주되어 왔다. 이러한 연구에도 한외여과법이나 역삼투법등의 막분리공정이 응용되어 보고된 바 있다.

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