Title of article :
Dynamics of nanoscale grain-boundary decohesion in aluminum
by molecular-dynamics simulation
Author/Authors :
V. Yamakov، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2007
Abstract :
The dynamics and energetics of intergranular
crack growth along a flat grain boundary in
aluminum is studied by a molecular-dynamics simulation
model for crack propagation under steady-state
conditions. Using the ability of the molecular-dynamics
simulation to identify atoms involved in different
atomistic mechanisms, it was possible to identify the
energy contribution of different processes taking place
during crack growth. The energy contributions were
divided as: elastic energy—defined as the potential
energy of the atoms in fcc crystallographic state; and
plastically stored energy—the energy of stacking faults
and twin boundaries; grain-boundary and surface
energy. In addition, monitoring the amount of heat
exchange with the molecular-dynamics thermostat
gives the energy dissipated as heat in the system. The
energetic analysis indicates that the majority of energy
in a fast growing crack is dissipated as heat. This
dissipation increases linearly at low speed, and faster
than linear at speeds approaching 1/3 the Rayleigh
wave speed when the crack tip becomes dynamically
unstable producing periodic dislocation bursts until the
crack is blunted.
Journal title :
Journal of Materials Science
Journal title :
Journal of Materials Science