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Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties

Both numerical simulation and hardness measurements were used to determine the mechanical and microstructural behavior of AZ31 bulk samples when submitted to the Equal Channel Angular Pressing (ECAP) technique. Billets of this representative of Mg-rich alloys were submitted to different numbers of p...

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Autores principales: Skryabina, Nataliya, Aptukov, Valery, Romanov, Petr, Fruchart, Daniel, de Rango, Patricia, Girard, Gregory, Grandini, Carlos, Sandim, Hugo, Huot, Jacques, Lang, Julien, Cantelli, Rosario, Leardini, Fabrice
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337228/
https://www.ncbi.nlm.nih.gov/pubmed/30591659
http://dx.doi.org/10.3390/molecules24010089
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author Skryabina, Nataliya
Aptukov, Valery
Romanov, Petr
Fruchart, Daniel
de Rango, Patricia
Girard, Gregory
Grandini, Carlos
Sandim, Hugo
Huot, Jacques
Lang, Julien
Cantelli, Rosario
Leardini, Fabrice
author_facet Skryabina, Nataliya
Aptukov, Valery
Romanov, Petr
Fruchart, Daniel
de Rango, Patricia
Girard, Gregory
Grandini, Carlos
Sandim, Hugo
Huot, Jacques
Lang, Julien
Cantelli, Rosario
Leardini, Fabrice
author_sort Skryabina, Nataliya
collection PubMed
description Both numerical simulation and hardness measurements were used to determine the mechanical and microstructural behavior of AZ31 bulk samples when submitted to the Equal Channel Angular Pressing (ECAP) technique. Billets of this representative of Mg-rich alloys were submitted to different numbers of passes for various ECAP modes (anisotropic A, isotropic B(C)). The strain distribution, the grain size refinement, and the micro-hardness were used as indicators to quantify the effectiveness of the different processing routes. Structural characterizations at different scales were achieved using Scanning Electron Microscopy (SEM), micro-analysis, metallography, Small Angle Neutron Scattering SANS, X-Ray Diffraction (XRD), and texture determination. The grain and crystallite size distribution and orientation as well as defect impacts were determined. Anelastic Spectroscopy (AS) on mechanically deformed samples have shown that the temperature of ECAP differentiate the fragile to ductile regime. MgH(2) consolidated powders were checked for using AS to detect potential hydrogen motions and interaction with host metal atoms. After further optimization, the different mechanically-treated samples were submitted to hydrogenation/dehydrogenation (H/D) cycles, which shows that, for a few passes, the B(C) mode is better than the A one, as supported by theoretical and experimental microstructure analyses. Accordingly, the hydrogen uptake and (H/D) reactions were correlated with the optimized microstructure peculiarities and interpreted in terms of Johnson-Avrami- Mehl-Kolmogorov (JAMK) and Jander models, successively.
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spelling pubmed-63372282019-01-25 Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties Skryabina, Nataliya Aptukov, Valery Romanov, Petr Fruchart, Daniel de Rango, Patricia Girard, Gregory Grandini, Carlos Sandim, Hugo Huot, Jacques Lang, Julien Cantelli, Rosario Leardini, Fabrice Molecules Article Both numerical simulation and hardness measurements were used to determine the mechanical and microstructural behavior of AZ31 bulk samples when submitted to the Equal Channel Angular Pressing (ECAP) technique. Billets of this representative of Mg-rich alloys were submitted to different numbers of passes for various ECAP modes (anisotropic A, isotropic B(C)). The strain distribution, the grain size refinement, and the micro-hardness were used as indicators to quantify the effectiveness of the different processing routes. Structural characterizations at different scales were achieved using Scanning Electron Microscopy (SEM), micro-analysis, metallography, Small Angle Neutron Scattering SANS, X-Ray Diffraction (XRD), and texture determination. The grain and crystallite size distribution and orientation as well as defect impacts were determined. Anelastic Spectroscopy (AS) on mechanically deformed samples have shown that the temperature of ECAP differentiate the fragile to ductile regime. MgH(2) consolidated powders were checked for using AS to detect potential hydrogen motions and interaction with host metal atoms. After further optimization, the different mechanically-treated samples were submitted to hydrogenation/dehydrogenation (H/D) cycles, which shows that, for a few passes, the B(C) mode is better than the A one, as supported by theoretical and experimental microstructure analyses. Accordingly, the hydrogen uptake and (H/D) reactions were correlated with the optimized microstructure peculiarities and interpreted in terms of Johnson-Avrami- Mehl-Kolmogorov (JAMK) and Jander models, successively. MDPI 2018-12-27 /pmc/articles/PMC6337228/ /pubmed/30591659 http://dx.doi.org/10.3390/molecules24010089 Text en © 2018 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
Skryabina, Nataliya
Aptukov, Valery
Romanov, Petr
Fruchart, Daniel
de Rango, Patricia
Girard, Gregory
Grandini, Carlos
Sandim, Hugo
Huot, Jacques
Lang, Julien
Cantelli, Rosario
Leardini, Fabrice
Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title_full Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title_fullStr Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title_full_unstemmed Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title_short Microstructure Optimization of Mg-Alloys by the ECAP Process Including Numerical Simulation, SPD Treatments, Characterization, and Hydrogen Sorption Properties
title_sort microstructure optimization of mg-alloys by the ecap process including numerical simulation, spd treatments, characterization, and hydrogen sorption properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6337228/
https://www.ncbi.nlm.nih.gov/pubmed/30591659
http://dx.doi.org/10.3390/molecules24010089
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