DocumentCode :
1180653
Title :
Modeling the nanoindentation of elastoplastic materials with nonlinear adaptive springs (NASs)
Author :
Attaf, Mohammed T.
Author_Institution :
Univ. du Quebec, Montreal, Que., Canada
Volume :
3
Issue :
4
fYear :
2004
Firstpage :
451
Lastpage :
461
Abstract :
In this paper, the β-material concept helps to elaborate and explore a new model for the indentation cycle of elastoplastic materials. The proposed approach takes into account the nonlinear behavior of homogeneous and isotropic materials. It uses the idea of a nonlinear adaptive spring (NAS) with changing properties according to the depth of penetration to accurately reproduce the material behavior in loading and unloading stages. The properties of the adopted NAS are included in its own stiffness function κ appearing in the form of an infinite sum of which the convergence and some properties are discussed in detail. This new model, which allows the indentation cycle to be reproduced whatever the penetration depth, permits at the same time a direct calculation of the involved energy terms. It also provides the possibility to perform separate analysis of the plastic energy, which allows distinguishing between different types of the material behavior and a better understanding of its nature. A validation is accomplished by applying the method to three different materials.
Keywords :
elastoplasticity; hardness testing; indentation; nanotechnology; springs (mechanical); NAS; convergence; elastoplastic material nanoindentation; hardness testing; homogeneous material; infinite sum; isotropic material; loading stages; material behavior; materials properties; mechanical properties; mechanical testing; nonlinear adaptive spring; nonlinear behavior; plastic energy; stiffness function; unloading stages; Analytical models; Convergence; Data mining; Material properties; Materials testing; Mechanical factors; Nanostructured materials; Performance analysis; Plastics; Springs; Electroplastic materials; hardness testing; materials properties; mechanical properties; mechanical testing; nanoindentation;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2004.834182
Filename :
1366345
Link To Document :
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