Title of article :
Interatomic potentials and the simulation of fracture:
C15 NbCr2
Author/Authors :
Frohmut R?sch · Hans-Rainer Trebin ·
Peter Gumbsch، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2006
Abstract :
The discrete nature of solids and the
interatomic interactions strongly influence crack
propagation. Lattice trapping results in stable
cracks above and below the critical Griffith load.
Local atomic arrangements near the crack front
define fracture behaviour. The analysis of these
processes on an atomic scale helps to understand
principle mechanisms and their consequences,
which also have to be incorporated in more coarsegrained
descriptions to get reliable results. Largescale
molecular dynamics simulations of fracture
on the atomic level can supply information not
accessible to experiment. But to simulate a specific
material reasonable effective interatomic potentials
are needed. In this paper, we report on the
fitting and validation of potentials specifically generated
for the fracture of C15 NbCr2. Results are
compared to those derived with potentials for the
elements from the literature. The comparisonindicates that interactions fitted to elemental metals
are not sufficient to determine alloy properties.
Keywords :
Fracture · Crack propagation ·Molecular dynamics simulation · Embedded atommethod · Force matching · Ab initio · Lavesphase · C15 · NbCr2 · Complex metallic alloys ·Lattice trapping
Journal title :
International Journal of Fracture
Journal title :
International Journal of Fracture