会议专题

ATOMISTIC PREDICTIONS OF DISLOCATION NUCLEATION AT EXPERIMENTAL LOADS AND TEMPERATURES WITH TRANSITION STATE THEORY

The combined use of atomistic simulations and transition state theory (TST) has enabled significant improvements in the prediction of thermally activated processes in a wide range of applications,e.g.conformation changes in molecules,chemical reactions,kinetic phase transitions,solid state diffusion.However,such an approach is still in its infancy with regard to mechanics of materials applications.Focusing here on dislocation nucleation in Al,we examine the utility of five TST-based approaches.Using the finite temperature string method,we interpret the success/failure of each approach in terms of a full energetic analysis of the nucleation processes.After showing that advanced TST approaches such as variational TST can accurately predict nucleation rates,we employ variational TST to study dislocation nucleation from a free surface under ordinary laboratory conditions.The predictions (1) demonstrate that nucleation will only occur under very high stresses at room temperature,(2) provide an upper bound on the shear strength of Al in dislocation starved contexts,and (3) provide a rate sensitivity signature of the nucleation process.

dislocation atomistic simulation molecular dynamics deformation mechanism nucleation

L.D.Nguyen K.L.Baker D.H.Warner

School of Civil and Environmental Engineering,Cornell University,Ithaca NY

国际会议

The Third International Conference on Heterogeneous Material Mechanics(第三届国际非均匀材料力学会议)

上海

英文

473-475

2011-05-22(万方平台首次上网日期,不代表论文的发表时间)