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Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion

Mg-5wt.% Sn alloy is often used in portable electronic devices and automobiles. In this study, mechanical properties of Mg-5wt.% Sn alloy processed by Equal Channel Angular Extrusion (ECAE) were characterized. More precisely, its hardness and wear behavior were measured using Vickers hardness test a...

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Autores principales: Chen, Jung-Hsuan, Shen, Yen-Chen, Chao, Chuen-Guang, Liu, Tzeng-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5706262/
https://www.ncbi.nlm.nih.gov/pubmed/29144414
http://dx.doi.org/10.3390/ma10111315
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author Chen, Jung-Hsuan
Shen, Yen-Chen
Chao, Chuen-Guang
Liu, Tzeng-Feng
author_facet Chen, Jung-Hsuan
Shen, Yen-Chen
Chao, Chuen-Guang
Liu, Tzeng-Feng
author_sort Chen, Jung-Hsuan
collection PubMed
description Mg-5wt.% Sn alloy is often used in portable electronic devices and automobiles. In this study, mechanical properties of Mg-5wt.% Sn alloy processed by Equal Channel Angular Extrusion (ECAE) were characterized. More precisely, its hardness and wear behavior were measured using Vickers hardness test and a pin-on-disc wear test. The microstructures of ECAE-processed Mg-Sn alloys were investigated by scanning electron microscope and X-ray diffraction. ECAE process refined the grain sizes of the Mg-Sn alloy from 117.6 μm (as-cast) to 88.0 μm (one pass), 49.5 μm (two passes) and 24.4 μm (four passes), respectively. Meanwhile, the hardness of the alloy improved significantly. The maximum wear resistance achieved in the present work was around 73.77 m/mm(3), which was obtained from the Mg-Sn alloy treated with a one-pass ECAE process with a grain size of 88.0 μm. The wear resistance improvement was caused by the grain size refinement and the precipitate of the second phase, Mg(2)Sn against the oxidation of the processed alloy. The as-cast Mg-Sn alloy with the larger grain size, i.e., 117.6 μm, underwent wear mechanisms, mainly adhesive wear and abrasive wear. In ECAE-processed Mg-Sn alloy, high internal energy occurred due to the high dislocation density and the stress field produced by the plastic deformation, which led to an increased oxidation rate of the processed alloy during sliding. Therefore, the oxidative wear and a three-body abrasive wear in which the oxide debris acted as the three-body abrasive components became the dominant factors in the wear behavior, and as a result, reduced the wear resistance in the multi-pass ECAE-processed alloy.
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spelling pubmed-57062622017-12-04 Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion Chen, Jung-Hsuan Shen, Yen-Chen Chao, Chuen-Guang Liu, Tzeng-Feng Materials (Basel) Article Mg-5wt.% Sn alloy is often used in portable electronic devices and automobiles. In this study, mechanical properties of Mg-5wt.% Sn alloy processed by Equal Channel Angular Extrusion (ECAE) were characterized. More precisely, its hardness and wear behavior were measured using Vickers hardness test and a pin-on-disc wear test. The microstructures of ECAE-processed Mg-Sn alloys were investigated by scanning electron microscope and X-ray diffraction. ECAE process refined the grain sizes of the Mg-Sn alloy from 117.6 μm (as-cast) to 88.0 μm (one pass), 49.5 μm (two passes) and 24.4 μm (four passes), respectively. Meanwhile, the hardness of the alloy improved significantly. The maximum wear resistance achieved in the present work was around 73.77 m/mm(3), which was obtained from the Mg-Sn alloy treated with a one-pass ECAE process with a grain size of 88.0 μm. The wear resistance improvement was caused by the grain size refinement and the precipitate of the second phase, Mg(2)Sn against the oxidation of the processed alloy. The as-cast Mg-Sn alloy with the larger grain size, i.e., 117.6 μm, underwent wear mechanisms, mainly adhesive wear and abrasive wear. In ECAE-processed Mg-Sn alloy, high internal energy occurred due to the high dislocation density and the stress field produced by the plastic deformation, which led to an increased oxidation rate of the processed alloy during sliding. Therefore, the oxidative wear and a three-body abrasive wear in which the oxide debris acted as the three-body abrasive components became the dominant factors in the wear behavior, and as a result, reduced the wear resistance in the multi-pass ECAE-processed alloy. MDPI 2017-11-16 /pmc/articles/PMC5706262/ /pubmed/29144414 http://dx.doi.org/10.3390/ma10111315 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
Chen, Jung-Hsuan
Shen, Yen-Chen
Chao, Chuen-Guang
Liu, Tzeng-Feng
Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title_full Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title_fullStr Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title_full_unstemmed Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title_short Wear Behavior and Microstructure of Mg-Sn Alloy Processed by Equal Channel Angular Extrusion
title_sort wear behavior and microstructure of mg-sn alloy processed by equal channel angular extrusion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5706262/
https://www.ncbi.nlm.nih.gov/pubmed/29144414
http://dx.doi.org/10.3390/ma10111315
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