4.7 Article

High performance CO2-perm-selective SSZ-13 membranes: Elucidation of the link between membrane material and module properties

期刊

JOURNAL OF MEMBRANE SCIENCE
卷 611, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.memsci.2020.118390

关键词

SSZ-13 zeolite; Zeolite membrane; Carbon capture; Single tube module; Module separation performance

资金

  1. Korea CCS R&D Center (KCRC) through National Research Foundation (NRF) of Korea [2014M1A8A1049309]
  2. International Research & Development Program through National Research Foundation (NRF) of Korea [2016K1A3A1A48954031]
  3. Super Ultra Low Energy and Emission Vehicle (SULEEV) Center through National Research Foundation (NRF) of Korea [2016R1A5A1009592]
  4. Korea government (Ministry of Science and ICT)
  5. National Research Foundation of Korea [2014M1A8A1049309, 2016K1A3A1A48954031] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

Standard oil synthetic zeolite-13 (SSZ-13) membranes separate CO2 (0.33 nm) from larger molecules (N-2 (0.364 nm) and CH4 (0.38 nm)) via micropore (0.37 x 0.42 nm(2)) size differentiation and function well in humid CO2-containing feeds, thus allowing effective carbon capture. However, their separation performance in a module configuration is not fully understood. Here, we changed the membrane supports from discs to tubes and investigated the differences in CO2 perm-selectivities. The resulting hydrophobic SSZ-13 membranes had comparable and high separation factors (similar to 20-30 for CO2/N-2 and similar to 130-200 for CO2/CH4), while CO2 permeance increased under wet conditions from similar to 1.8 x 10(-8) mol.m(-2) s(-1).Pa-1 (disc) to similar to 3.0-4.0 x 10(-7) mol.m(-2) s(-1).Pa-1 (tube). In addition, a long term stability test confirms the robustness of the SSZ-13 membrane under wet conditions. Furthermore, we varied the operating conditions systematically to evaluate the membrane module properties (recovery and purity) in two sizes of permeation cells or single tube modules. Considering the module performance efficiency, approximately, 76% and 59% CO2 recovery and purity, respectively, were achieved using the tube-supported membrane with respect to a wet CO2/N-2 mixture (mol:mol = 15:85; simulated for flue gas from coal-fired power plants). In addition, we derived a relationship between mass transport (related to CO2 molar flux) and feed gas flow properties. Specifically, mass transfer (represented by the Sherwood number) in the feed stream and CO2 molar flux across the membrane were related to the Reynolds number (a representative parameter of the feed stream). Finally, the Reynolds number was complemented with total feed pressure and CO2 feed flow rate; the combined parameter described the module performance (CO2 recovery and purity) well.

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