Porous ceramic membranes for propane–propylene separation via the π-complexation mechanism: unsupported systems

2005 ◽  
Vol 78 (2-3) ◽  
pp. 235-243 ◽  
Author(s):  
K.A. Stoitsas ◽  
A. Gotzias ◽  
E.S. Kikkinides ◽  
Th.A. Steriotis ◽  
N.K. Kanellopoulos ◽  
...  
Materials ◽  
2021 ◽  
Vol 14 (2) ◽  
pp. 457
Author(s):  
Chunlei Ren ◽  
Wufeng Chen ◽  
Chusheng Chen ◽  
Louis Winnubst ◽  
Lifeng Yan

Porous Al2O3 membranes were prepared through a phase-inversion tape casting/sintering method. The alumina membranes were embedded with finger-like pores perpendicular to the membrane surface. Bare alumina membranes are naturally hydrophilic and underwater oleophobic, while fluoroalkylsilane (FAS)-grafted membranes are hydrophobic and oleophilic. The coupling of FAS molecules on alumina surfaces was confirmed by Thermogravimetric Analysis and X-ray Photoelectron Spectroscopy measurements. The hydrophobic membranes exhibited desired thermal stability and were super durable when exposed to air. Both membranes can be used for gravity-driven oil/water separation, which is highly cost-effective. The as-calculated separation efficiency (R) was above 99% for the FAS-grafted alumina membrane. Due to the excellent oil/water separation performance and good chemical stability, the porous ceramic membranes display potential for practical applications.


2018 ◽  
Vol 20 ◽  
pp. 16-33 ◽  
Author(s):  
J. Saraiva de Souza ◽  
S. José dos Santos Filho ◽  
Severino Rodrigues de Farias Neto ◽  
A.G. Barbosa de Lima ◽  
H.A. Luma Fernandes Magalhães

Innovative technologies are needed to attend the increasingly strict requirements for produced water treatment, since most of the separation processes are limited to particles larger than 10 μm. Separation processes using ceramic membranes are attracting great interest from academic and industrial community. Nevertheless, few studies, especially numerical, regarding the inorganic membrane’s application for the polluted water separation have been reported. In the present work, therefore, a study of fluid-flow dynamics for a laminar regime in porous tubes (tubular porous ceramic membrane) has been performed. The mass, momentum and mass transport conservation equations were solved with the aid of a structured mesh using ANSYS CFX commercial package. The velocity of local permeation was determined using the resistance in series model. The specific resistance of the polarized layer was obtained by Carman-Kozeny equation. The numerical results were evaluated and compared with the results available in the literature, where by a good agreement with each other was found. The numerical results, obtained by the proposed shell and tubular membrane separation module, indicate that there is facilitation of mass transfer and hence a reduction in the thickness of the polarized boundary layer occurs.


1995 ◽  
Vol 12 (1) ◽  
pp. 95-99 ◽  
Author(s):  
Jongheop Yi ◽  
L. L. Tavlarides

2018 ◽  
Vol 156 ◽  
pp. 08015 ◽  
Author(s):  
Muh Amin ◽  
Muhammad Subri

In this study, fabrication and characterization of ceramic membranes preparation was carried out. Porous ceramic membranes were fabricated by extrusion process from different percentage composition of CuZn on (80 wt% Clay, 10 wt% TiO2, 5 wt% Carbon and 5 wt% PVA). The fabricated membranes were sintered at 900°C for 1 hour in an electrical box furnace with heating rate 1oC/min and holding time for 1 hour. Apparent density and porosity were determined by standar methods for ceramic materials. Phase composition of the ceramic support was established by X-Ray Diffraction analysis. SEM studies of the membranes added at different CuZn were carried out.


2005 ◽  
Vol 46 (1-2) ◽  
pp. 118-124 ◽  
Author(s):  
Jihye Gwak ◽  
André Ayral ◽  
Vincent Rouessac ◽  
Ki Hyeon Kim ◽  
Jean-Claude Grenier ◽  
...  

1993 ◽  
Vol 28 (1-3) ◽  
pp. 821-854 ◽  
Author(s):  
J. H. F. Lim ◽  
X Jia ◽  
R Jafferali ◽  
G A Davies

2021 ◽  
Vol 66 (6) ◽  
pp. 1100-1108
Author(s):  
M. V. Grigoriev ◽  
Yu. S. Krivonosov ◽  
A. V. Buzmakov ◽  
M. V. Chukalina ◽  
V. E. Asadchikov ◽  
...  

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