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  <title><![CDATA[PhD Proposal by Mike Standish ]]></title>
  <body><![CDATA[<p><strong>THE SCHOOL OF MATERIALS SCIENCE AND ENGINEERING</strong> &nbsp;</p>

<p>  &nbsp;</p>

<p><strong>GEORGIA INSTITUTE OF TECHNOLOGY</strong>   &nbsp;</p>

<p> &nbsp;</p>

<p><strong>Under the provisions of the regulations for the degree</strong>&nbsp;<br />
 &nbsp;</p>

<p><strong>DOCTOR OF PHILOSOPHY</strong>&nbsp;<br />
 &nbsp;</p>

<p><strong>on Wednesday, August 17, 2022</strong>&nbsp;</p>

<p><strong>10:00 AM</strong></p>

<p>&nbsp;</p>

<p><strong>via</strong></p>

<p><br />
<strong>Zoom Videoconferencing&nbsp;</strong></p>

<p><strong><a href="https://gatech.zoom.us/j/91234247085?pwd=OTB6QUYrQ0pxeUZNdEM1VlNvUFRrdz09">https://gatech.zoom.us/j/91234247085?pwd=OTB6QUYrQ0pxeUZNdEM1VlNvUFRrdz09</a>&nbsp;</strong></p>

<p><strong>Meeting ID: 912 3424 7085&nbsp;</strong></p>

<p><strong>Passcode: 184501&nbsp;</strong></p>

<p>&nbsp;</p>

<p><strong>will be held the</strong>&nbsp;</p>

<p> &nbsp;</p>

<p><strong>DISSERTATION PROPOSAL DEFENSE</strong>&nbsp;<br />
&nbsp;<br />
<strong>for</strong>&nbsp;</p>

<p> &nbsp;</p>

<p><strong>Mike Standish</strong>&nbsp;</p>

<p> &nbsp;</p>

<p><strong>&quot;Self-consistent Modeling and Material Property Analysis of an Additively Manufactured Polycrystalline Material&quot;</strong>&nbsp;</p>

<p> &nbsp;</p>

<p><strong>Committee Members:</strong>&nbsp;</p>

<p> &nbsp;</p>

<p><strong>Prof. Hamid Garmestani, Advisor, MSE&nbsp;</strong></p>

<p><strong>Prof. Steven Liang, ME&nbsp;</strong></p>

<p><strong>Prof. David L. McDowell, ME/MSE&nbsp;</strong></p>

<p><strong>Prof. Preet Singh, MSE&nbsp;</strong></p>

<p><strong>Prof. Sa&iuml;d Ahzi, MSE&nbsp;</strong></p>

<p>&nbsp;</p>

<p>&nbsp;<strong>Abstract:</strong></p>

<p>&nbsp;</p>

<p>Material testing is a cornerstone to understanding how a given material will perform when used in an engineering application.&nbsp; The procedure for investigating properties begins with manufacturing a physical structure, rigorously testing replicates either destructively or non-destructively, and then analyzing material&#39;s properties using microscopy. This process is both labor intensive and financially burdensome so recent studies have cut the number of samples and overall scope of study that determines how a material can best be utilized.&nbsp; Conducting simulations of material microstructures provides a cost-effective method of maximizing data. The simulations can be linked to experimental data to form useful and flexible models.</p>

<p>&nbsp;</p>

<p>This research expands on material modeling in the field of Additive Manufacturing (AM) by selecting the manufacturing method (Selective Laser Melting (SLM)), choosing a multi-phase crystalline structure of extreme relevance to the manufacturing industries, and focusing on generating a realistic texture microstructural representation of the material by combining process parameters with statistical continuum mechanics theory. Once the material nature is distilled under the continuum, it can be expanded into a full-size structure with common occurring defects and inelastic strain effects by mimicking experimental data studied on samples produced in a similar manner.&nbsp; The bulk material structure can then be expanded into an AM part and its microstructure linked with a desired material property.&nbsp; This study utilizes a self-consistent model to generate a representative texture with the final goal of predicting inelastic properties of the polycrystalline material Titanium-6Al -4V.</p>

<p>&nbsp;</p>

<p>This model builds upon extensive research done by Garmestani et al.&nbsp;&nbsp; His previous work successfully modeled a single-phase body-center-cubic (BCC) structure representing the Ti-beta phase via melt pool thermal evolution using the Rosenthal model.&nbsp; Since then, I have expanded the model to represent two phases, adding the hexagonal close-packed (HCP) structure representative of the Ti-alpha phase by modeling secondary-phase precipitation tied to the cooling of the microstructure.&nbsp; This was accomplished via Bunge texture and microstructure analysis methods.&nbsp; The model controls the texture by generating and then manipulating Euler angles to create unique electron backscatter diffraction (EBSD) and orientation distribution functions (ODF) data.&nbsp; &nbsp;</p>

<p>The outlook of this research will add one- and two-dimensional defects as well as incorporate process parameter effects with the intension of constructing a final texture that can be expanded into a fully simulated AM SLM part.&nbsp; The final goal of this project is to formulate a relationship between the generated material texture and the material property of inelastic strain.&nbsp; In accomplishing this endeavor, the model will be easily tailorable towards other properties as well as different crystalline materials. This study aims to better understand a multitude of properties without the financial impact of manufacturing and testing physical samples. This model could assist in predicting the properties of a given material in advance and offer modifications to manufacturing process parameters to achieve a desirable microstructure that will perform as intended.</p>
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