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    <loc>https://teambuchta.com/bio</loc>
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    <lastmod>2021-11-27</lastmod>
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      <image:title>Bio - David Buchta, PhD</image:title>
      <image:caption>Curriculum Vitae (PDF) Post-doctoral Researcher Department of Mechanical Engineering Johns Hopkins University</image:caption>
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  <url>
    <loc>https://teambuchta.com/research</loc>
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    <lastmod>2017-12-23</lastmod>
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      <image:title>Research</image:title>
      <image:caption>DNS of high-speed free-shear-flow turbulence and its near-field acoustics (colors and grays represent vorticity and dilatation, respectively).</image:caption>
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      <image:title>Research</image:title>
      <image:caption>Direct simulation of a model laser-induced breakdown (colors represent temperature).</image:caption>
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      <image:caption>Proper orthogonal decomposition applied to video from NASA.</image:caption>
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      <image:title>Research</image:title>
      <image:caption>Underexpanded sonic jet in a supersonic crossflow (colors represent temperature). WENO solver developed in part by Pooya Movahed. This material is based in part upon work supported by the Department of Energy, National Nuclear Security Administration, under Award Number DE-NA0002374. This research used resources of the Argonne Leadership Computing facility, which is a DOE Office of Science User Facility supported under Contract DE-AC05-00OR22725. This research used resources of the Oak Ridge Leadership Computing Facility, which is a DOE Office of Science User Facility supported under Contract DE-­AC05-­00OR22725.</image:caption>
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    <loc>https://teambuchta.com/home</loc>
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    <lastmod>2021-11-27</lastmod>
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      <image:title>Home</image:title>
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      <image:title>Home</image:title>
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  <url>
    <loc>https://teambuchta.com/publications</loc>
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    <lastmod>2021-02-11</lastmod>
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    <loc>https://teambuchta.com/teaching-service</loc>
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    <lastmod>2021-02-11</lastmod>
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      <image:title>Teaching &amp; Service</image:title>
      <image:caption>Direct simulation of a model laser-induced breakdown used to describe the 'anatomy' of an adjoint simulation (presented at AE598 lecture).</image:caption>
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