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STFP Home sign in | focus RAP opportunity at National Institute of Standards and Technology NIST Microstructure Evolution Models for Optimizing Metals Additive Manufacturing Location
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single biomolecules with IR laser light to study T dependent kinetics and thermodynamics relevant to evolution of thermophilic species. We have also recently developed powerful new capabilities for
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, for characterizing the evolution of materials during sintering [3]. Some potential research directions could include developing sample stages that enable novel ceramic processing (like cold
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and evolution. The Group aims to advance fundamental understanding, improve predictability for design, ensure reproducibility and comparability, and facilitate scalability for real-world applications
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activated defect evolution, material damping, and temperature dependence of physical properties of piezoelectric materials. During the past two decades, innovative single-crystalline piezoelectric
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of constitutive laws for new materials based on the initial crystallographic texture and uniaxial stress-strain data, thereby predicting the evolution of the yield surface in multi-axial tensile space
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plasticity, where genetic drift, transgene instability, or chromosomal rearrangements can alter product quality or yield over time. Understanding this genomic evolution is essential for assuring the
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Develop extremely high sensitivity, multi-species measurement capability with cavity enhancement Explore quantum methods to improve sensitivity of DCS References: https://www.nist.gov/programs-projects
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crystal; and level set methods, to understand the evolution of phase distributions, grain sizes, texture, and residual stresses in both as-built and heat-treated materials. Model results will both be
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[email protected] 301.975.4393 Description There is a growing need for high-performance materials for various technological applications. To address this need, the NIST-JARVIS (https://jarvis.nist.gov