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Khaled SharafEldin

Publications and source records attributed to Khaled SharafEldin.

2 recordsLinked to original sources

Unexpected Planar Dislocation Boundary Formation in FCC Metals Captured by Dark-Field X-ray Microscopy and Continuum Dislocation Dynamics

Validating dislocation patterning models against in situ imaging experiments is a longstanding goal in materials physics. Here, we provide the first direct morphological comparison of such models. Using in situ Dark-Field X-ray Microscopy (DFXM), we map the local orientations in high-purity aluminium deformed along [100] and find unexpected planar dislocation boundaries aligned with {111} slip planes that form prior to the development of a conventional dislocation cell structure. To explain this behaviour, we generate synthetic DFXM contrast images from a continuum dislocation dynamics (CDD) simulation. This mesoscale model, using nickel as a high stacking fault energy (SFE) FCC analogue, independently predicts the formation of the same {111} planar boundary types. This correspondence demonstrates that state-of-the-art CDD and DFXM experimental data can be used synergistically - despite differences in strain rates and length scales - as a practical route for refining continuum theories of plasticity.

cond-mat.mtrl-sci

A First Experiment at Interfacing Crystal Plasticity and Continuum Dislocation Dynamics

A computational approach has been developed for the analysis of the properties of 3D dislocation substructures generated by the vector density continuum dislocation dynamics (CDD), within the framework of crystal plasticity. In the CDD framework, the dislocation density on the individual slip systems is represented by vector fields with a unique dislocation line direction at each point in space. The evolution of these density fields is governed by a set of transport-reaction equations coupled with crystal mechanics. This detailed picture of the dislocation system enables mesoscale plasticity simulations based on dislocation properties at the lattice level. In the current work, a computational approach based on streamline construction is proposed to obtain the statistical properties of the dislocation substructures generated by CDD. Streamlines are obtained by travelling along the tangent of the vector density and velocity fields of the dislocation system, which enables us to construct the dislocation lines and their paths in the deformed crystal in 3D. The streamlines are computed by numerical integration of a set of partial differential equations for the parameterized tangent fields. Here, we use this approach to extract microstructure parameters from the CDD simulations that are relevant to substructure-sensitive crystal plasticity models. These parameters include the mean free path and average mobile dislocation segment length, as well as the dislocation wall volume fraction, together with the corresponding distributions. The results show that, past a short initial rise during monotonic loading, both the mobile dislocation segment length and dislocation mean free path decrease with the applied strain, which is consistent with the models used in the crystal plasticity literature.

cond-mat.mtrl-sci