Title of article :
Studying the effect of grain boundaries in dislocation density based crystal-plasticity finite element simulations
Author/Authors :
A. Ma، نويسنده , , F. Roters، نويسنده , , D. Raabe، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2006
Abstract :
A dislocation density based constitutive model for the face centered cubic crystal structure has been implemented into a
crystal-plasticity finite element framework and extended to consider the mechanical interaction between mobile dislocations
and grain boundaries by the authors [Ma, A., Roters, F., Raabe, D., 2006a. A dislocation density based constitutive
model for crystal-plasticity FEM including geometrically necessary dislocations. Acta Materialia 54, 2169–2179; Ma, A.,
Roters, F., Raabe, D., 2006b. On the consideration of interactions between dislocations and grain boundaries in crystalplasticity
finite element modeling – theory, experiments, and simulations. Acta Materialia 54, 2181–2194]. The approach to
model the grain boundary resistance against slip is based on the introduction of an additional activation energy into the
rate equation for mobile dislocations in the vicinity of internal interfaces. This energy barrier is derived from the assumption
of thermally activated dislocation penetration events through grain boundaries. The model takes full account of the
geometry of the grain boundaries and of the Schmid factors of the critically stressed incoming and outgoing slip systems. In
this study we focus on the influence of the one remaining model parameter which can be used to scale the obstacle strength
of the grain boundary.
Keywords :
Crystal-plasticity FEM , size effect , Statistically stored dislocation density , Geometrically necessary dislocation density , Internal variables , Constitutive equation , FCC , slip system
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures