Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)

Abstract This work presents a detailed description of the formulation and implementation of the Atomistic Finite Element Method AFEM, exemplified in the analysis of one- and two-dimensional atomic domains governed by the Lennard Jones interatomic potential. The methodology to synthesize element stiffness matrices and load vectors, the potential energy modification of the atomistic finite elements (AFE) to account for boundary edge effects, the inclusion of boundary conditions is carefully described. The conceptual relation between the cut-off radius of interatomic potentials and the number of nodes in the AFE is addressed and exemplified for the 1D case. For the 1D case elements with 3, 5 and 7 nodes were addressed. The AFEM has been used to describe the mechanical behavior of one-dimensional atomic arrays as well as two-dimensional lattices of atoms. The examples also included the analysis of pristine domains, as well as domains with missing atoms, defects, or vacancies. Results are compared with classical molecular dynamic simulations (MD) performed using a commercial package. The results have been very encouraging in terms of accuracy and in the computational effort necessary to execute both methodologies, AFEM and MD. The methodology can be expanded to model any domain described by an interatomic energy potential.

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Main Authors: Damasceno,D.A., Mesquita,E., Rajapakse,R.N.K.D.
Format: Digital revista
Language:English
Published: Associação Brasileira de Ciências Mecânicas 2017
Online Access:http://old.scielo.br/scielo.php?script=sci_arttext&pid=S1679-78252017001102046
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spelling oai:scielo:S1679-782520170011020462017-12-18Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)Damasceno,D.A.Mesquita,E.Rajapakse,R.N.K.D. AFEM Interatomic potentials Lennard Jones potential molecular dynamics Abstract This work presents a detailed description of the formulation and implementation of the Atomistic Finite Element Method AFEM, exemplified in the analysis of one- and two-dimensional atomic domains governed by the Lennard Jones interatomic potential. The methodology to synthesize element stiffness matrices and load vectors, the potential energy modification of the atomistic finite elements (AFE) to account for boundary edge effects, the inclusion of boundary conditions is carefully described. The conceptual relation between the cut-off radius of interatomic potentials and the number of nodes in the AFE is addressed and exemplified for the 1D case. For the 1D case elements with 3, 5 and 7 nodes were addressed. The AFEM has been used to describe the mechanical behavior of one-dimensional atomic arrays as well as two-dimensional lattices of atoms. The examples also included the analysis of pristine domains, as well as domains with missing atoms, defects, or vacancies. Results are compared with classical molecular dynamic simulations (MD) performed using a commercial package. The results have been very encouraging in terms of accuracy and in the computational effort necessary to execute both methodologies, AFEM and MD. The methodology can be expanded to model any domain described by an interatomic energy potential.info:eu-repo/semantics/openAccessAssociação Brasileira de Ciências MecânicasLatin American Journal of Solids and Structures v.14 n.11 20172017-01-01info:eu-repo/semantics/articletext/htmlhttp://old.scielo.br/scielo.php?script=sci_arttext&pid=S1679-78252017001102046en10.1590/1679-78254050
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country Brasil
countrycode BR
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databasecode rev-scielo-br
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region America del Sur
libraryname SciELO
language English
format Digital
author Damasceno,D.A.
Mesquita,E.
Rajapakse,R.N.K.D.
spellingShingle Damasceno,D.A.
Mesquita,E.
Rajapakse,R.N.K.D.
Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
author_facet Damasceno,D.A.
Mesquita,E.
Rajapakse,R.N.K.D.
author_sort Damasceno,D.A.
title Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
title_short Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
title_full Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
title_fullStr Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
title_full_unstemmed Mechanical Behavior of Nano Structures Using Atomic-Scale Finite Element Method (AFEM)
title_sort mechanical behavior of nano structures using atomic-scale finite element method (afem)
description Abstract This work presents a detailed description of the formulation and implementation of the Atomistic Finite Element Method AFEM, exemplified in the analysis of one- and two-dimensional atomic domains governed by the Lennard Jones interatomic potential. The methodology to synthesize element stiffness matrices and load vectors, the potential energy modification of the atomistic finite elements (AFE) to account for boundary edge effects, the inclusion of boundary conditions is carefully described. The conceptual relation between the cut-off radius of interatomic potentials and the number of nodes in the AFE is addressed and exemplified for the 1D case. For the 1D case elements with 3, 5 and 7 nodes were addressed. The AFEM has been used to describe the mechanical behavior of one-dimensional atomic arrays as well as two-dimensional lattices of atoms. The examples also included the analysis of pristine domains, as well as domains with missing atoms, defects, or vacancies. Results are compared with classical molecular dynamic simulations (MD) performed using a commercial package. The results have been very encouraging in terms of accuracy and in the computational effort necessary to execute both methodologies, AFEM and MD. The methodology can be expanded to model any domain described by an interatomic energy potential.
publisher Associação Brasileira de Ciências Mecânicas
publishDate 2017
url http://old.scielo.br/scielo.php?script=sci_arttext&pid=S1679-78252017001102046
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