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Nano-Ni exhibits grain crushing in the elastic stage of deformation but steady grain growth during bulk plastic deformation under high-pressure loading.
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The electron ionization promoted sharp destruction of the shells, disintegration of coagula, and formation of smaller steady grains.
In contrast, Asominori exhibits a smooth and steady grain-filling course.
This notion is consistent with a previous study showing that a steady grain-filling rate is required for prevention of chalkiness in rice endosperm [ 5].
The steady state grain size was calculated under the assumption that a constant fraction of mechanical work acts to reduce grain size.
In situations where these rates are balanced, a steady state grain size can be established.
In this study we construct a two-dimensional, single phase model for the steady state grain size beneath a mid-ocean ridge.
The steady-state grain size was decreased and hardness increased by alloying in all the systems.
Steady-state grain sizes below 12 nm are obtained, which increase weakly with decreasing milling intensity or increasing temperature.
A steady-state grain size is maintained in the recrystallized structure following yielding due to boundary migration and grain rotation mechanisms, rather than by diffusion-based dislocation climb.
Plotting the calculated steady-state grain size as a function of the strain necessary to complete DRX allows visualising both processing and compositional trends, which are relevant to materials engineering and can be used for design.
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