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The role of Cr atoms/clusters played in the twinning process is rationalized in terms of dislocation rebound-promotion mechanism.
We discuss their possible causes in terms of dislocation densities using transmission electron microscopy.
We explain this behavior in terms of dislocation substructure refinement and subsequent activation of deformation twinning.
The plastic energy absorption is interpreted in terms of dislocation work.
This is tentatively interpreted in terms of dislocation transmission through the β fillets.
The preferred combination of primary and critical slip during cyclic deformation is also discussed in terms of dislocation reactions.
Similar(44)
The measured anisotropic line broadening in these strongly textured foils was interpreted in terms of dislocations.
These results are explicable in terms of dislocations surmounting barriers inertially, which is a temperature independent process, where the viscosity is temperature independent.
The contribution of twin and dislocation substructures to strain hardening is evaluated in terms of a dislocation mean free path approach involving several microstructure parameters, such as the characteristic average twin spacing and the dislocation substructure size.
Experiments provided results for establishing design rules in terms of possible dislocation and failure strains.
The stress intensity factors are obtained numerically in terms of the dislocation density functions of the logarithmic singular integral equations.
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