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Repulsion leads to coupled dislocation motion and extended work hardening in bcc metals. | LitMetric

Repulsion leads to coupled dislocation motion and extended work hardening in bcc metals.

Nat Commun

Institute for Applied Materials (IAM), Karlsruhe Institute of Technology (KIT), Straße am Forum 7, 76131, Karlsruhe, Germany.

Published: October 2020

AI Article Synopsis

  • Work hardening in bcc single crystals like tungsten behaves differently at low temperatures than classical models suggest, particularly with high symmetry loading.
  • Research indicates that the high activation barrier for screw dislocation movement in tungsten leads to unexpected dislocation interactions and motion under certain loading conditions.
  • Advanced simulations and microscopy reveal that this behavior can be explained by the kink pair mechanism and incorporated into crystal plasticity models, helping to clarify why [100] oriented tungsten shows prolonged work hardening and increased ductility in highly deformed bcc metals.

Article Abstract

Work hardening in bcc single crystals at low homologous temperature shows a strong orientation-dependent hardening for high symmetry loading, which is not captured by classical dislocation density based models. We demonstrate here that the high activation barrier for screw dislocation glide motion in tungsten results in repulsive interactions between screw dislocations, and triggers dislocation motion at applied loading conditions where it is not expected. In situ transmission electron microscopy and atomistically informed discrete dislocation dynamics simulations confirm coupled dislocation motion and vanishing obstacle strength for repulsive screw dislocations, compatible with the kink pair mechanism of dislocation motion in the thermally activated (low temperature) regime. We implement this additional contribution to plastic strain in a modified crystal plasticity framework and show that it can explain the extended work hardening regime observed for [100] oriented tungsten single crystal. This may contribute to better understanding the increase in ductility of highly deformed bcc metals.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7547675PMC
http://dx.doi.org/10.1038/s41467-020-18774-1DOI Listing

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