High temperature deformation and failure in aluminum-alumina particulate metal matrix composites

This work was primarily concerned with investigating the role of the reinforcing particles on plastic flow and fracture of metal matrix composites (MMCs) in the high temperature, moderately high strain rate domain. Uniaxial tensile, uniaxial compressive, and collar compressive tests were conducte...

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Main Author: Ganguly, Partha
Format: Others
Language:English
Published: 2009
Online Access:http://hdl.handle.net/2429/7778
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spelling ndltd-UBC-oai-circle.library.ubc.ca-2429-77782018-01-05T17:33:51Z High temperature deformation and failure in aluminum-alumina particulate metal matrix composites Ganguly, Partha This work was primarily concerned with investigating the role of the reinforcing particles on plastic flow and fracture of metal matrix composites (MMCs) in the high temperature, moderately high strain rate domain. Uniaxial tensile, uniaxial compressive, and collar compressive tests were conducted on as-cast and extruded MMCs (the uniaxial tests were also conducted on unreinforced AA6061), and the flow and fracture behavior of the materials examined. The micro-failure characteristics were ascertained through metallographic examination of the fractured samples - both perpendicular and parallel to the fracture surface, and through numerical simulations of the collar compression test on the as-cast MMC . The reinforcing particles were found to enhance the flow stress and lower the failure strain in these materials. The detrimental effect of the particles on failure strain was higher for the as-cast M M C - and this was deemed to be due to the presence of particle rich clusters in its microstructure. In both the extruded and as-cast MMCs, particle cracking and interfacial decohesion were the primary void nucleation mechanisms. The dominance of one mechanism over another was found to be temperature dependent - the former dominating at lower and the latter at higher temperatures. The MMC ductility peaked in the mid-temperature region, where the occurrence of the two mechanisms was comparable. Applied Science, Faculty of Materials Engineering, Department of Graduate 2009-04-30T18:22:44Z 2009-04-30T18:22:44Z 1998 1998-05 Text Thesis/Dissertation http://hdl.handle.net/2429/7778 eng For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use. 13565533 bytes application/pdf
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language English
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description This work was primarily concerned with investigating the role of the reinforcing particles on plastic flow and fracture of metal matrix composites (MMCs) in the high temperature, moderately high strain rate domain. Uniaxial tensile, uniaxial compressive, and collar compressive tests were conducted on as-cast and extruded MMCs (the uniaxial tests were also conducted on unreinforced AA6061), and the flow and fracture behavior of the materials examined. The micro-failure characteristics were ascertained through metallographic examination of the fractured samples - both perpendicular and parallel to the fracture surface, and through numerical simulations of the collar compression test on the as-cast MMC . The reinforcing particles were found to enhance the flow stress and lower the failure strain in these materials. The detrimental effect of the particles on failure strain was higher for the as-cast M M C - and this was deemed to be due to the presence of particle rich clusters in its microstructure. In both the extruded and as-cast MMCs, particle cracking and interfacial decohesion were the primary void nucleation mechanisms. The dominance of one mechanism over another was found to be temperature dependent - the former dominating at lower and the latter at higher temperatures. The MMC ductility peaked in the mid-temperature region, where the occurrence of the two mechanisms was comparable. === Applied Science, Faculty of === Materials Engineering, Department of === Graduate
author Ganguly, Partha
spellingShingle Ganguly, Partha
High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
author_facet Ganguly, Partha
author_sort Ganguly, Partha
title High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
title_short High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
title_full High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
title_fullStr High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
title_full_unstemmed High temperature deformation and failure in aluminum-alumina particulate metal matrix composites
title_sort high temperature deformation and failure in aluminum-alumina particulate metal matrix composites
publishDate 2009
url http://hdl.handle.net/2429/7778
work_keys_str_mv AT gangulypartha hightemperaturedeformationandfailureinaluminumaluminaparticulatemetalmatrixcomposites
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