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- W2079046611 abstract "Microheterogeneity resulting from dislocation substructure evolution is introduced into polycrystal elastoviscoplasticity through a second rank tensorial internal state variable. This evolving tensorial variable operates at the scale of the grain to capture the effects of subgrain scale dislocation substructures. The microheterogeneity resulting from dislocation substructure evolution is mapped to each single crystal slip system as kinematic hardening and also affects the higher length scale of intergranular constraints in a self-consistent manner. The anisotropy from the microheterogeneity internal state variable improves the trends of correlation between polycrystalline calculation macroscale responses (stress-strain curve, texture, and axial stresses developed during fixed-end torsion) and the experimental results. Elastic moduli under finite strains were experimentally measured to corroborate numerical predictions. Calculations with the microheterogeneity internal state variable compared better with the elastic moduli measurements than did the Taylor model." @default.
- W2079046611 created "2016-06-24" @default.
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- W2079046611 date "1998-03-01" @default.
- W2079046611 modified "2023-09-26" @default.
- W2079046611 title "Modeling effects of dislocation substructure in polycrystal elastoviscoplasticity" @default.
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- W2079046611 doi "https://doi.org/10.1016/s0167-6636(97)00037-9" @default.
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