Aluminum Nano-composites for Elevated Temperature Applications

"Conventional manufacturing methods are sub-optimal for nano-composites fabrication. Inhomogeneous dispersion of the secondary phase and scalability issues are the main issues. This work focuses on an innovative method where the reinforcement is formed in-situ in the melt. It involves the react...

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Main Author: borgonovo, cecilia
Other Authors: Diran Apelian, Advisor
Format: Others
Published: Digital WPI 2010
Subjects:
Online Access:https://digitalcommons.wpi.edu/etd-theses/962
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1961&context=etd-theses
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spelling ndltd-wpi.edu-oai-digitalcommons.wpi.edu-etd-theses-19612019-03-22T05:46:17Z Aluminum Nano-composites for Elevated Temperature Applications borgonovo, cecilia "Conventional manufacturing methods are sub-optimal for nano-composites fabrication. Inhomogeneous dispersion of the secondary phase and scalability issues are the main issues. This work focuses on an innovative method where the reinforcement is formed in-situ in the melt. It involves the reaction of the molten aluminum with a nitrogen- bearing gas injected through the melt at around 1273 K. AlN particles are expected to form through this in situ reaction. A model has been developed to predict the amount of reinforced phase. Experiments have been carried out to confirm the feasibility of the process and the mechanism of AlN formation discussed. The detrimental effect of oxygen in the melt which hinders the nitridation reaction has been proved. The effect of process times and the addition of alloying elements (Mg and Si) have also been investigated." 2010-08-23T07:00:00Z text application/pdf https://digitalcommons.wpi.edu/etd-theses/962 https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1961&context=etd-theses Masters Theses (All Theses, All Years) Digital WPI Diran Apelian, Advisor Richard D. Sisson, Jr., Department Head in-situ processing. composites lightweight
collection NDLTD
format Others
sources NDLTD
topic in-situ processing.
composites
lightweight
spellingShingle in-situ processing.
composites
lightweight
borgonovo, cecilia
Aluminum Nano-composites for Elevated Temperature Applications
description "Conventional manufacturing methods are sub-optimal for nano-composites fabrication. Inhomogeneous dispersion of the secondary phase and scalability issues are the main issues. This work focuses on an innovative method where the reinforcement is formed in-situ in the melt. It involves the reaction of the molten aluminum with a nitrogen- bearing gas injected through the melt at around 1273 K. AlN particles are expected to form through this in situ reaction. A model has been developed to predict the amount of reinforced phase. Experiments have been carried out to confirm the feasibility of the process and the mechanism of AlN formation discussed. The detrimental effect of oxygen in the melt which hinders the nitridation reaction has been proved. The effect of process times and the addition of alloying elements (Mg and Si) have also been investigated."
author2 Diran Apelian, Advisor
author_facet Diran Apelian, Advisor
borgonovo, cecilia
author borgonovo, cecilia
author_sort borgonovo, cecilia
title Aluminum Nano-composites for Elevated Temperature Applications
title_short Aluminum Nano-composites for Elevated Temperature Applications
title_full Aluminum Nano-composites for Elevated Temperature Applications
title_fullStr Aluminum Nano-composites for Elevated Temperature Applications
title_full_unstemmed Aluminum Nano-composites for Elevated Temperature Applications
title_sort aluminum nano-composites for elevated temperature applications
publisher Digital WPI
publishDate 2010
url https://digitalcommons.wpi.edu/etd-theses/962
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=1961&context=etd-theses
work_keys_str_mv AT borgonovocecilia aluminumnanocompositesforelevatedtemperatureapplications
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