Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

MD Simulation of the Behavior of Small Dislocation Loops in Irradiated Metal During Deformation

Journal Article · · Fusion Science and Technology
OSTI ID:20849557

In this study, MD simulations of compression process were carried for copper lattices with an interstitial type Frank loops. Slipping of prismatic dislocations was not observed for loops whose size ranges from 0.5nm to 3.6nm. For loops with a size of 0.5nm, atoms in loops were squeezed into the neighboring layer to form crowdion bundles along <110> directions, and then swept away by further deformation. For loops larger than 2nm, the movements of atoms in faulted layer were not homogeneously in one direction during elastic deformation process, its extrinsic stacking was broken into two intrinsic ones exist on two successive planes. After yielding the slipping on these two successive planes accommodated the plastic deformation and broke up the loop. The results in this work proved that, for low stacking fault energy FCC metals such as copper and stainless steel, to describe their deformation mechanism after neutron or heavy ion irradiation, unfaulting and prismatic slipping mechanism cannot apply for interstitial Frank loops, and the behavior of these loops have dependence on their size and Schmid factor.

OSTI ID:
20849557
Journal Information:
Fusion Science and Technology, Journal Name: Fusion Science and Technology Journal Issue: 2 Vol. 44; ISSN 1536-1055
Country of Publication:
United States
Language:
English

Similar Records

Unfaulting mechanisms of interstitial Frank loops in fluorite-structured ThO2
Journal Article · Mon Aug 21 00:00:00 EDT 2023 · Scripta Materialia · OSTI ID:2336706

Triangular interstitial frank loop dissociation in irradiated metals
Journal Article · Wed Sep 01 00:00:00 EDT 1976 · Scr. Metall.; (United States) · OSTI ID:7330799

On deformation twinning in b. c. c. metals
Journal Article · Thu Jul 01 00:00:00 EDT 1993 · Acta Metallurgica et Materialia; (United States) · OSTI ID:6327894