Simulations of Indentation at Continuum and Atomic levels

The main goal of this work is to determine values of elastic constants of orthotropic, transversely isotropic and cubic materials through indentation tests on thin layers bonded to rigid substrates. Accordingly, we first use the Stroh formalism to provide an analytical solution for generalized plan...

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Bibliographic Details
Main Author: Jiang, Wen
Other Authors: Engineering Science and Mechanics
Format: Others
Published: Virginia Tech 2014
Subjects:
FCC
Online Access:http://hdl.handle.net/10919/26350
http://scholar.lib.vt.edu/theses/available/etd-03032008-141234/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-263502020-09-26T05:33:26Z Simulations of Indentation at Continuum and Atomic levels Jiang, Wen Engineering Science and Mechanics Batra, Romesh C. Librescu, Liviu Farkas, Diana Hyer, Michael W. Lin, Tao Case, Scott W. continuum equivalence nanoindentation analytical solution FCC load-displacement relation atomic simulation Cylindrical contact The main goal of this work is to determine values of elastic constants of orthotropic, transversely isotropic and cubic materials through indentation tests on thin layers bonded to rigid substrates. Accordingly, we first use the Stroh formalism to provide an analytical solution for generalized plane strain deformations of a linear elastic anisotropic layer bonded to a rigid substrate, and indented by a rigid cylindrical indenter. The mixed boundary-value problem is challenging since the deformed indented surface of the layer contacting the rigid cylinder is unknown a priori, and is to be determined as a part of the solution of the problem. For a rigid parabolic prismatic indenter contacting either an isotropic layer or an orthotropic layer, the computed solution is found to compare well with solutions available in the literature. Parametric studies have been conducted to delimit the length and the thickness of the layer for which the derived relation between the axial load and the indentation depth is valid. We then derive an expression relating the axial load, the indentation depth, and the elastic constants of an orthotropic material. This relation is specialized to a cubic material (e.g., an FCC single crystal). By using results of three virtual (i.e., numerical) indentation tests on the same specimen oriented differently, we compute values of the elastic moduli, and show that they agree well with their expected values. The technique can be extended to other anisotropic materials. We review the literature on relations between deformations at the atomic level and stresses and strains defined at the continuum level. These are then used to compare stress and strain distributions in mechanical tests performed on atomic systems and their equivalent continuum structures. Whereas averaged stresses and strains defined in terms of the overall deformations of the atomic system match well with those derived from the continuum description of the body, their local spatial distributions differ. Ph. D. 2014-03-14T20:07:56Z 2014-03-14T20:07:56Z 2008-01-29 2008-03-03 2008-03-31 2008-03-31 Dissertation etd-03032008-141234 http://hdl.handle.net/10919/26350 http://scholar.lib.vt.edu/theses/available/etd-03032008-141234/ wjiang_dissertation.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic continuum equivalence
nanoindentation
analytical solution
FCC
load-displacement relation
atomic simulation
Cylindrical contact
spellingShingle continuum equivalence
nanoindentation
analytical solution
FCC
load-displacement relation
atomic simulation
Cylindrical contact
Jiang, Wen
Simulations of Indentation at Continuum and Atomic levels
description The main goal of this work is to determine values of elastic constants of orthotropic, transversely isotropic and cubic materials through indentation tests on thin layers bonded to rigid substrates. Accordingly, we first use the Stroh formalism to provide an analytical solution for generalized plane strain deformations of a linear elastic anisotropic layer bonded to a rigid substrate, and indented by a rigid cylindrical indenter. The mixed boundary-value problem is challenging since the deformed indented surface of the layer contacting the rigid cylinder is unknown a priori, and is to be determined as a part of the solution of the problem. For a rigid parabolic prismatic indenter contacting either an isotropic layer or an orthotropic layer, the computed solution is found to compare well with solutions available in the literature. Parametric studies have been conducted to delimit the length and the thickness of the layer for which the derived relation between the axial load and the indentation depth is valid. We then derive an expression relating the axial load, the indentation depth, and the elastic constants of an orthotropic material. This relation is specialized to a cubic material (e.g., an FCC single crystal). By using results of three virtual (i.e., numerical) indentation tests on the same specimen oriented differently, we compute values of the elastic moduli, and show that they agree well with their expected values. The technique can be extended to other anisotropic materials. We review the literature on relations between deformations at the atomic level and stresses and strains defined at the continuum level. These are then used to compare stress and strain distributions in mechanical tests performed on atomic systems and their equivalent continuum structures. Whereas averaged stresses and strains defined in terms of the overall deformations of the atomic system match well with those derived from the continuum description of the body, their local spatial distributions differ. === Ph. D.
author2 Engineering Science and Mechanics
author_facet Engineering Science and Mechanics
Jiang, Wen
author Jiang, Wen
author_sort Jiang, Wen
title Simulations of Indentation at Continuum and Atomic levels
title_short Simulations of Indentation at Continuum and Atomic levels
title_full Simulations of Indentation at Continuum and Atomic levels
title_fullStr Simulations of Indentation at Continuum and Atomic levels
title_full_unstemmed Simulations of Indentation at Continuum and Atomic levels
title_sort simulations of indentation at continuum and atomic levels
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/26350
http://scholar.lib.vt.edu/theses/available/etd-03032008-141234/
work_keys_str_mv AT jiangwen simulationsofindentationatcontinuumandatomiclevels
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