In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation

The ability to predict a material's performance while being subject to complex thermo-mechanical processing is of great importance for material design and implementation in the real world. A material's behavior and performance has been shown to depend on its underlying microstructure. Re...

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Main Author: Lind, Jonathan F.
Format: Others
Published: Research Showcase @ CMU 2013
Subjects:
Online Access:http://repository.cmu.edu/dissertations/301
http://repository.cmu.edu/cgi/viewcontent.cgi?article=1300&context=dissertations
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spelling ndltd-cmu.edu-oai-repository.cmu.edu-dissertations-13002014-07-24T15:36:16Z In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation Lind, Jonathan F. The ability to predict a material's performance while being subject to complex thermo-mechanical processing is of great importance for material design and implementation in the real world. A material's behavior and performance has been shown to depend on its underlying microstructure. Recent advances in x-ray-based characterization of bulk microstructures while in service has lead to validation and constraints of models used for predictive responses. Specifically the use of Near-Field High Energy X-ray Diffraction Microscopy (nf-HEDM) with Forward Modeling Method (FMM) to obtain spatially-resolved microstructures and microtextures has been a breakthrough in fully characterizing bulk materials in-situ. New advanced data processing methods have been applied to nf-HEDM diffraction images to assist in fidelity of microstructure reconstructions returned via the FMM. Here we present the development and results of one study of pure Zirconium as it is subjected to several states of uni-axial loading. The local feature tracking, including tensile twin nucleation and void formation, as well as global evolution is discussed. 2013-09-19T07:00:00Z text application/pdf http://repository.cmu.edu/dissertations/301 http://repository.cmu.edu/cgi/viewcontent.cgi?article=1300&context=dissertations Dissertations Research Showcase @ CMU Physics
collection NDLTD
format Others
sources NDLTD
topic Physics
spellingShingle Physics
Lind, Jonathan F.
In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
description The ability to predict a material's performance while being subject to complex thermo-mechanical processing is of great importance for material design and implementation in the real world. A material's behavior and performance has been shown to depend on its underlying microstructure. Recent advances in x-ray-based characterization of bulk microstructures while in service has lead to validation and constraints of models used for predictive responses. Specifically the use of Near-Field High Energy X-ray Diffraction Microscopy (nf-HEDM) with Forward Modeling Method (FMM) to obtain spatially-resolved microstructures and microtextures has been a breakthrough in fully characterizing bulk materials in-situ. New advanced data processing methods have been applied to nf-HEDM diffraction images to assist in fidelity of microstructure reconstructions returned via the FMM. Here we present the development and results of one study of pure Zirconium as it is subjected to several states of uni-axial loading. The local feature tracking, including tensile twin nucleation and void formation, as well as global evolution is discussed.
author Lind, Jonathan F.
author_facet Lind, Jonathan F.
author_sort Lind, Jonathan F.
title In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
title_short In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
title_full In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
title_fullStr In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
title_full_unstemmed In-situ High-Energy diffraction Microscopy Study of Zirconium Under Uni-axial Tensile Deformation
title_sort in-situ high-energy diffraction microscopy study of zirconium under uni-axial tensile deformation
publisher Research Showcase @ CMU
publishDate 2013
url http://repository.cmu.edu/dissertations/301
http://repository.cmu.edu/cgi/viewcontent.cgi?article=1300&context=dissertations
work_keys_str_mv AT lindjonathanf insituhighenergydiffractionmicroscopystudyofzirconiumunderuniaxialtensiledeformation
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