Christopher S. Meredith
United States Army Research Laboratory
26 Papers
8 Citations
Christopher S. Meredith is an academic researcher from United States Army Research Laboratory. The author has contributed to research in topics: Strain rate & Microstructure. The author has an hindex of 7, co-authored 23 publications. Previous affiliations of Christopher S. Meredith include University of Maryland, Baltimore County.
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Papers
Fracture of an anisotropic rare-earth-containing magnesium alloy (ZEK100) at different stress states and strain rates: Experiments and modeling
TL;DR: In this paper, an anisotropic rare-earth-containing magnesium alloy (ZEK100) sheet is investigated at different stress states and strain rates, and a variety of sample geometries, loading conditions, and loading orientations are used to achieve different stress triaxiality and deformation mechanisms.
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Texture evolution and anisotropy in the thermo-mechanical response of UFG Ti processed via equal channel angular pressing
TL;DR: In this article, the texture evolution and thermo-mechanical response of grade 1 titanium after equal channel angular pressing (ECAP) at different strain rates and temperatures were measured.
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Mechanical behavior of ultrafine-grained/nanocrystalline titanium synthesized by mechanical milling plus consolidation: Experiments, modeling and simulation
TL;DR: In this article, high quality bulk ultrafine-grained/nanocrystalline titanium samples were prepared through room temperature mechanical milling and conventional consolidation processes, and the texture evolution of the ufg/nc samples under compression was measured by synchrotron XRD.
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Incipient dynamic recrystallization and adiabatic shear bands in Ti–7Al studied via in situ X-ray diffraction
Daniel J. Magagnosc,Jeffrey T. Lloyd,Christopher S. Meredith,Adam L. Pilchak,Brian E. Schuster,Brian E. Schuster +5 more
TL;DR: In this paper, the first in situ X-ray diffraction (XRD) observations of dynamic recrystallization (DRX) and adiabatic shear bands (ASBs) are made.
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Microstructural evolution and the thermo-mechanical behavior of UFG Ti processed via equal channel angular pressing
TL;DR: In this article, equal channel angular pressing (ECAP) was applied to grade 1 Ti for up to four passes and the microstructure and thermo-mechanical behavior were determined.
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