Abstract

Some specially designed metallic alloys crystallize during process of rapid quenching which aims their amorphization. Nevertheless, change in their mechanical properties could be seen compared to these obtained during conventional technological regimes of cooling. That attracts the attention in this elaboration. Full 3-D numerical simulations of nanoindentation process of two material models are performed. The models reflect equivalent elastic and different plastic material properties. The plastic behaviour of the first one is subjected to yield criterion of Dracker-Prager and this of the second one to yield criterion of Mises. The reported numerical results depending on the nanoindentation scale length of 1000 nanometers, suggest different adequacy of the two yield criteria to the data obtained experimentally with a Zr-Al-Cu-Ni-Mo alloy. It could be speculated that the different effects developed depending on the indenter travel of 1000 nanometers and taken into account in the two yield criteria stand behind this fact and determinate three structural levels of plastic deformation.

Details

Title
Length-Scale Effects and Material Models at Numerical Simulations of Nanoindentation of A Metallic Alloy
Author
Nikolov, N; Avdjieva, T; Altaparmakov, I
Pages
25-40
Publication year
2014
Publication date
Jun 2014
Publisher
Bulgarska Akademiya na Naukite / Bulgarian Academy of Sciences
ISSN
08616663
e-ISSN
13148710
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1541223065
Copyright
Copyright De Gruyter Open Sp. z o.o. Jun 2014