Publications
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2015. Kink band formation in high-strength bulk metallic nanolaminates. Microscopy and Microanalysis. 21:1157–1158.
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2015. Enhanced plasticity via kinking in cubic metallic nanolaminates. Advanced Engineering Materials. 17:781–785.
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2014. Processing and deformation behavior of bulk Cu–Nb nanolaminates. Metallography, Microstructure, and Analysis. 3:470–476.
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2021. Kink band and shear band localization in anisotropic perfectly plastic solids. Journal of the Mechanics and Physics of Solids. 146:104183.
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2017. Strain fields induced by kink band propagation in Cu-Nb nanolaminate composites. Acta Materialia. 133:303–315.
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2003. Deformation of a platinum-containing RuAl intermetallic by< 111> dislocations. Scripta materialia. 48:1087–1092.
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2003. Elevated temperature deformation and dynamic strain aging in polycrystalline RuAl alloys. Intermetallics. 11:1029–1038.
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2006. Microstructure and properties of blended Mg- Al alloys fabricated by semisolid processing. Metallurgical and Materials Transactions A. 37:3725–3736.
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2003. Mechanical Behavior of Ternary and Quaternary RuAl Alloys. MATERIALS RESEARCH SOCIETY SYMPOSIUM PROCEEDINGS. 753:89–96.
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2002. Mechanical Behavior of Ternary and Quaternary Rual Alloys. MRS Proceedings. 753:BB2–11.
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2021. Low cycle fatigue of a single crystal CoNi-base superalloy. Materials Science and Engineering A. 827
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2022. Microstructure Evolution and Tensile Properties of a Selectively Laser Melted CoNi-Base Superalloy. Metallurgical and Materials Transactions A. 53
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2020. Low Cycle Fatigue of Single Crystal γ′-containing Co-based Superalloys at 750 °C. Metallurgical and Materials Transactions A. 51:200–213.
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2020. Microstructure and Tensile Properties of a CoNi-Based Superalloy Fabricated by Selective Electron Beam Melting. Superalloys 2020.
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2024. Rapid Screening of Single Phase Refractory Alloys Under Laser Melting Conditions. Materials & Design. :112726.
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2025. Solidification behavior and cracking mechanisms of Ru-containing BCC-B2 superalloys. Scr. Mater.. 267:116731.
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2025. High-throughput refractory alloy design for additive manufacturing. Mater. Des.. 259:114911.
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2025. Assessment of critical flaw sizes and crack driving forces during additive manufacturing of metallic materials. Addit. Manuf.. 111:104985.
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2025. High-throughput refractory alloy design for additive manufacturing. Materials & Design. 259
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2024. Cracking and precipitation behavior of refractory BCC–B2 alloys under laser melting conditions. Metall. Mater. Trans. A. 55:3809–3823.
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2024. Transpiration cooling of a porous Nb-based alloy in high heat flux conditions. Int. J. Therm. Sci.. 196:108758.
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2024. Machine learning based damage identification in SiC/SiC composites from acoustic emissions using autoencoders. Compos. B Eng.. 287:111802.
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2021. Damage mechanism identification in composites via machine learning and acoustic emission. npj Computational Materials. 7:95.
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2021. A machine learning framework for damage mechanism identification from acoustic emissions in unidirectional SiC/SiC composites. npj Computational Materials. 7

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