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Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering

The sintering of metal powders is an efficient and versatile technique to fabricate porous metal elements such as filters, diffusers, and membranes. Neck formation between particles is, however, critical to tune the porosity and optimize mass transfer in order to minimize the densification process....

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Autores principales: Allioux, Francois-Marie, David, Oana, Etxeberria Benavides, Miren, Kong, Lingxue, Pacheco Tanaka, David Alfredo, Dumée, Ludovic F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5618125/
https://www.ncbi.nlm.nih.gov/pubmed/28777352
http://dx.doi.org/10.3390/membranes7030040
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author Allioux, Francois-Marie
David, Oana
Etxeberria Benavides, Miren
Kong, Lingxue
Pacheco Tanaka, David Alfredo
Dumée, Ludovic F.
author_facet Allioux, Francois-Marie
David, Oana
Etxeberria Benavides, Miren
Kong, Lingxue
Pacheco Tanaka, David Alfredo
Dumée, Ludovic F.
author_sort Allioux, Francois-Marie
collection PubMed
description The sintering of metal powders is an efficient and versatile technique to fabricate porous metal elements such as filters, diffusers, and membranes. Neck formation between particles is, however, critical to tune the porosity and optimize mass transfer in order to minimize the densification process. In this work, macro-porous stainless steel (SS) hollow-fibers (HFs) were fabricated by the extrusion and sintering of a dope comprised, for the first time, of a bimodal mixture of SS powders. The SS particles of different sizes and shapes were mixed to increase the neck formation between the particles and control the densification process of the structure during sintering. The sintered HFs from particles of two different sizes were shown to be more mechanically stable at lower sintering temperature due to the increased neck area of the small particles sintered to the large ones. In addition, the sintered HFs made from particles of 10 and 44 μm showed a smaller average pore size (<1 μm) as compared to the micron-size pores of sintered HFs made from particles of 10 μm only and those of 10 and 20 μm. The novel HFs could be used in a range of applications, from filtration modules to electrochemical membrane reactors.
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spelling pubmed-56181252017-09-29 Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering Allioux, Francois-Marie David, Oana Etxeberria Benavides, Miren Kong, Lingxue Pacheco Tanaka, David Alfredo Dumée, Ludovic F. Membranes (Basel) Article The sintering of metal powders is an efficient and versatile technique to fabricate porous metal elements such as filters, diffusers, and membranes. Neck formation between particles is, however, critical to tune the porosity and optimize mass transfer in order to minimize the densification process. In this work, macro-porous stainless steel (SS) hollow-fibers (HFs) were fabricated by the extrusion and sintering of a dope comprised, for the first time, of a bimodal mixture of SS powders. The SS particles of different sizes and shapes were mixed to increase the neck formation between the particles and control the densification process of the structure during sintering. The sintered HFs from particles of two different sizes were shown to be more mechanically stable at lower sintering temperature due to the increased neck area of the small particles sintered to the large ones. In addition, the sintered HFs made from particles of 10 and 44 μm showed a smaller average pore size (<1 μm) as compared to the micron-size pores of sintered HFs made from particles of 10 μm only and those of 10 and 20 μm. The novel HFs could be used in a range of applications, from filtration modules to electrochemical membrane reactors. MDPI 2017-08-04 /pmc/articles/PMC5618125/ /pubmed/28777352 http://dx.doi.org/10.3390/membranes7030040 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Allioux, Francois-Marie
David, Oana
Etxeberria Benavides, Miren
Kong, Lingxue
Pacheco Tanaka, David Alfredo
Dumée, Ludovic F.
Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title_full Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title_fullStr Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title_full_unstemmed Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title_short Preparation of Porous Stainless Steel Hollow-Fibers through Multi-Modal Particle Size Sintering towards Pore Engineering
title_sort preparation of porous stainless steel hollow-fibers through multi-modal particle size sintering towards pore engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5618125/
https://www.ncbi.nlm.nih.gov/pubmed/28777352
http://dx.doi.org/10.3390/membranes7030040
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