AB-INITIO ATOMISTIC SIMULATION OF THE STRENGTH OF DEFECTIVE ALUMINUM AND TESTS OF EMPIRICAL FORCE MODELS

Citation
Vb. Deyirmenjian et al., AB-INITIO ATOMISTIC SIMULATION OF THE STRENGTH OF DEFECTIVE ALUMINUM AND TESTS OF EMPIRICAL FORCE MODELS, Physical review. B, Condensed matter, 52(21), 1995, pp. 15191-15207
Citations number
34
Categorie Soggetti
Physics, Condensed Matter
ISSN journal
01631829
Volume
52
Issue
21
Year of publication
1995
Pages
15191 - 15207
Database
ISI
SICI code
0163-1829(1995)52:21<15191:AASOTS>2.0.ZU;2-#
Abstract
The effects of atomic-scale voids on the strength and mechanical behav ior of aluminum at zero temperature are investigated using the total-e nergy pseudopotential method. A series of calculations are performed i n which the defective system is extended by a small increment and then is relaxed to its ground state configuration. The total energy and st ress are determined at each level of strain. The ''tensile test'' of t he defective system is compared with the results of an experiment on a perfect system. These simulations employ a quantum mechanical scheme and show the processes of deformation around the defects including the initiation of dislocations and slip. They can also be used as a datab ase on which to test models based on simpler atomistic potentials. We use them in that way to test a Sutton-Chen model tuned to our quantum mechanically simulated system, and a pairwise model by way of contrast to metallic bonding. The Sutton-Chen model shows significant void exp ansion at about 60% of the failure strain: an effect which is not seen in the ab initio calculations. The ab initio calculations suggest how empirical models such as the. Sutton-Chen scheme can probably be impr oved to reflect better the nature of metallic bonding.