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Pressureless sintering and gas flux properties of porous ceramic membranes for gas applications
Author(s) -
David O. Obada,
David DodooArhin,
Muhammad Dauda,
Fatai O. Anafi,
Abdulkarim S. Ahmed,
Olusegun A. Ajayi
Publication year - 2017
Publication title -
results in physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.743
H-Index - 56
ISSN - 2211-3797
DOI - 10.1016/j.rinp.2017.10.002
Subject(s) - membrane , materials science , porosity , ceramic , sintering , pellets , sawdust , volatilisation , ceramic membrane , composite material , pressing , chemical engineering , chemistry , biochemistry , engineering , organic chemistry
The preparation and characterization of kaolin based ceramic membranes using styrofoam (STY) and sawdust (SD) as pore formers have been prepared by mechano-chemical synthesis using pressureless sintering technique with porogen content between (0â20) wt% by die pressing. Pellets were fired at 1150â¯Â°C and soaking time of 4â¯h. The membranes cast as circular disks were subjected to characterization studies to evaluate the effect of the sintering temperature and pore former content on porosity, density, water absorption and mechanical strength. Obtained membranes show effective porosity with maximum at about 43 and 47% respectively for membranes formulated with styrofoam and sawdust porogens but with a slightly low mechanical strength that does not exceed 19â¯MPa. The resultant ceramic bodies show a fine porous structure which is mainly caused by the volatilization of the porogens. The fabricated membrane exhibited high N2 gas flux, hence, these membranes can be considered as efficient for potential application for gas separation by reason of the results shown in the gas flux tests. Keywords: Porosity, Pore formers, Kaolin, Physico-mechanical properties, Gas separation, Gas flu

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