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  <title><![CDATA[PhD Defense by William Daloz]]></title>
  <body><![CDATA[<p><strong>MSE PhD Defense - William Daloz</strong></p><p>&nbsp;</p><p>Wednesday, September 16, 3 p.m.</p><p>&nbsp;</p><p><strong>MRDC 3515 (Hightower Conference Room)</strong></p><p>&nbsp;</p><p>Thesis Committee:</p><p>Prof. Joe Cochran (advisor), MSE</p><p>Prof. David McDowell, ME/MSE</p><p>Prof. Rick Neu, ME</p><p>Prof. Thomas Sanders, MSE</p><p>Prof. Naresh Thadhani, MSE</p><p>&nbsp;</p><p><strong>Title: Developing a High Temperature Oxidation Resistant Mo-Si02 Composite Alloy</strong></p><p>&nbsp;</p><p><strong>Abstract:</strong> </p><p>A new powder processing approach to produce oxidation resistant molybdenum alloys for high temperature use has been developed. Oxidation protection is provided by fine dispersion of silica&nbsp;glass&nbsp;particles within a molybdenum matrix. As the molybdenum oxidizes, the&nbsp;glass&nbsp;is exposed and melts to form a self-healing protective oxide coating. Additionally, homogeneously dispersed Mo5SiB2 and/or Mo2B provide boria upon oxidation which reduces&nbsp;glass&nbsp;viscosity and allows flowing glass to coat the surface while remaining solid internally. This is similar to the oxidation protection used in Mo-3Si-1B (wt%) systems; however&nbsp;embedding&nbsp;the&nbsp;glass&nbsp;directly&nbsp;into&nbsp;the Mo matrix and eliminating the Mo3Si (A15) phase provides the same volume of&nbsp;glass&nbsp;at lower volume fractions of brittle phases and also without embrittling Si impurities in solution in Mo. Additionally the&nbsp;glass&nbsp;composition can be tailored for different applications and different temperatures beyond that achievable in Mo-Si-B based systems. A variety of microstructures, compositions and additional components for improved oxidation protection are also explored, and mechanisms of the oxidation protection are discussed.</p><p> </p>]]></body>
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