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Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion

An aluminum (Al) matrix with various transition metal (TM) additions is an effective alloying approach for developing high-specific-strength materials for use at elevated temperatures. Conventional fabrication processes such as casting or fusion-related methods are not capable of producing Al–TM all...

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Autores principales: Wang, Tianhao, Gwalani, Bharat, Silverstein, Joshua, Darsell, Jens, Jana, Saumyadeep, Roosendaal, Timothy, Ortiz, Angel, Daye, Wayne, Pelletiers, Tom, Whalen, Scott
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7728062/
https://www.ncbi.nlm.nih.gov/pubmed/33255717
http://dx.doi.org/10.3390/ma13235333
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author Wang, Tianhao
Gwalani, Bharat
Silverstein, Joshua
Darsell, Jens
Jana, Saumyadeep
Roosendaal, Timothy
Ortiz, Angel
Daye, Wayne
Pelletiers, Tom
Whalen, Scott
author_facet Wang, Tianhao
Gwalani, Bharat
Silverstein, Joshua
Darsell, Jens
Jana, Saumyadeep
Roosendaal, Timothy
Ortiz, Angel
Daye, Wayne
Pelletiers, Tom
Whalen, Scott
author_sort Wang, Tianhao
collection PubMed
description An aluminum (Al) matrix with various transition metal (TM) additions is an effective alloying approach for developing high-specific-strength materials for use at elevated temperatures. Conventional fabrication processes such as casting or fusion-related methods are not capable of producing Al–TM alloys in bulk form. Solid phase processing techniques, such as extrusion, have been shown to maintain the microstructure of Al–TM alloys. In this study, extrusions are fabricated from gas-atomized aluminum powders (≈100–400 µm) that contain 12.4 wt % TM additives and an Al-based matrix reinforced by various Al–Fe–Cr–Ti intermetallic compounds (IMCs). Two different extrusion techniques, conventional hot extrusion and friction extrusion, are compared using fabricating rods. During extrusion, the strengthening IMC phases were extensively refined as a result of severe plastic deformation. Furthermore, the quasicrystal approximant IMC phase (70.4 wt % Al, 20.4 wt % Fe, 8.7 wt % Cr, 0.6 wt % Ti) observed in the powder precursor is replaced by new IMC phases such as Al(3.2)Fe and Al(45)Cr(7)-type IMCs. The Al(3)Ti-type IMC phase is partially dissolved into the Al matrix during extrusion. The combination of linear and rotational shear in the friction extrusion process caused severe deformation in the powders, which allowed for a higher extrusion ratio, eliminated linear voids, and resulted in higher ductility while maintaining strength comparable to that resulting from hot extrusion. Results from equilibrium thermodynamic calculations show that the strengthening IMC phases are stable at elevated temperatures (up to ≈ 600 °C), thus enhancing the high-temperature strength of the extrudates.
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spelling pubmed-77280622020-12-11 Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion Wang, Tianhao Gwalani, Bharat Silverstein, Joshua Darsell, Jens Jana, Saumyadeep Roosendaal, Timothy Ortiz, Angel Daye, Wayne Pelletiers, Tom Whalen, Scott Materials (Basel) Article An aluminum (Al) matrix with various transition metal (TM) additions is an effective alloying approach for developing high-specific-strength materials for use at elevated temperatures. Conventional fabrication processes such as casting or fusion-related methods are not capable of producing Al–TM alloys in bulk form. Solid phase processing techniques, such as extrusion, have been shown to maintain the microstructure of Al–TM alloys. In this study, extrusions are fabricated from gas-atomized aluminum powders (≈100–400 µm) that contain 12.4 wt % TM additives and an Al-based matrix reinforced by various Al–Fe–Cr–Ti intermetallic compounds (IMCs). Two different extrusion techniques, conventional hot extrusion and friction extrusion, are compared using fabricating rods. During extrusion, the strengthening IMC phases were extensively refined as a result of severe plastic deformation. Furthermore, the quasicrystal approximant IMC phase (70.4 wt % Al, 20.4 wt % Fe, 8.7 wt % Cr, 0.6 wt % Ti) observed in the powder precursor is replaced by new IMC phases such as Al(3.2)Fe and Al(45)Cr(7)-type IMCs. The Al(3)Ti-type IMC phase is partially dissolved into the Al matrix during extrusion. The combination of linear and rotational shear in the friction extrusion process caused severe deformation in the powders, which allowed for a higher extrusion ratio, eliminated linear voids, and resulted in higher ductility while maintaining strength comparable to that resulting from hot extrusion. Results from equilibrium thermodynamic calculations show that the strengthening IMC phases are stable at elevated temperatures (up to ≈ 600 °C), thus enhancing the high-temperature strength of the extrudates. MDPI 2020-11-25 /pmc/articles/PMC7728062/ /pubmed/33255717 http://dx.doi.org/10.3390/ma13235333 Text en © 2020 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
Wang, Tianhao
Gwalani, Bharat
Silverstein, Joshua
Darsell, Jens
Jana, Saumyadeep
Roosendaal, Timothy
Ortiz, Angel
Daye, Wayne
Pelletiers, Tom
Whalen, Scott
Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title_full Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title_fullStr Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title_full_unstemmed Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title_short Microstructural Assessment of a Multiple-Intermetallic-Strengthened Aluminum Alloy Produced from Gas-Atomized Powder by Hot Extrusion and Friction Extrusion
title_sort microstructural assessment of a multiple-intermetallic-strengthened aluminum alloy produced from gas-atomized powder by hot extrusion and friction extrusion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7728062/
https://www.ncbi.nlm.nih.gov/pubmed/33255717
http://dx.doi.org/10.3390/ma13235333
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