MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH

Microstructure-based simulations of the deformation processes require substantial computational resources due to the necessity of using detailed meshes with a large number of elements. An approach that considerably reduces the computational costs implies simulation of quasistatic deformation within...

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Main Authors: Varvara Romanova, Ruslan Balokhonov, Evgeniya Emelianova, Olga Zinovieva, Aleksandr Zinoviev
Format: Article
Language:English
Published: University of Niš 2019-07-01
Series:Facta Universitatis. Series: Mechanical Engineering
Online Access:http://casopisi.junis.ni.ac.rs/index.php/FUMechEng/article/view/5108
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author Varvara Romanova
Ruslan Balokhonov
Evgeniya Emelianova
Olga Zinovieva
Aleksandr Zinoviev
author_facet Varvara Romanova
Ruslan Balokhonov
Evgeniya Emelianova
Olga Zinovieva
Aleksandr Zinoviev
author_sort Varvara Romanova
collection DOAJ
description Microstructure-based simulations of the deformation processes require substantial computational resources due to the necessity of using detailed meshes with a large number of elements. An approach that considerably reduces the computational costs implies simulation of quasistatic deformation within a dynamic approach involving a solution of the motion equations rather than the equilibrium equations. It enables a transition from implicit to explicit time integration providing a significant gain in the computational capacity. In this paper, we show that the explicit dynamic approach can be successfully used in the microstructure-based simulations of quasistatic deformation, considerably reducing the computational costs without losing the information and solution accuracy. The following conditions have to be met to ensure a close agreement between the dynamic and static solutions: (i) the load velocity in the dynamic calculations must be smoothly increased to its amplitude value and then kept constant to minimize the acceleration term appearing in the equation of motion and (ii) the constitutive model employed must describe a quasi-rate-independent response. An examination of the mesh convergence and the strain-rate dependence for a polycrystalline aluminum model has supported this conclusion.
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spelling doaj.art-7f8d3a430c6a4cd0933c64a574c0d52f2022-12-22T03:41:00ZengUniversity of NišFacta Universitatis. Series: Mechanical Engineering0354-20252335-01642019-07-0117224325410.22190/FUME190403028R2392MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACHVarvara Romanova0Ruslan Balokhonov1Evgeniya Emelianova2Olga Zinovieva3Aleksandr Zinoviev4Institute of Strength Physics and Materials Science, Russian Academy of SciencesInstitute of Strength Physics and Materials Science, Russian Academy of SciencesInstitute of Strength Physics and Materials Science, Russian Academy of SciencesUniversity of BremenUniversity of BremenMicrostructure-based simulations of the deformation processes require substantial computational resources due to the necessity of using detailed meshes with a large number of elements. An approach that considerably reduces the computational costs implies simulation of quasistatic deformation within a dynamic approach involving a solution of the motion equations rather than the equilibrium equations. It enables a transition from implicit to explicit time integration providing a significant gain in the computational capacity. In this paper, we show that the explicit dynamic approach can be successfully used in the microstructure-based simulations of quasistatic deformation, considerably reducing the computational costs without losing the information and solution accuracy. The following conditions have to be met to ensure a close agreement between the dynamic and static solutions: (i) the load velocity in the dynamic calculations must be smoothly increased to its amplitude value and then kept constant to minimize the acceleration term appearing in the equation of motion and (ii) the constitutive model employed must describe a quasi-rate-independent response. An examination of the mesh convergence and the strain-rate dependence for a polycrystalline aluminum model has supported this conclusion.http://casopisi.junis.ni.ac.rs/index.php/FUMechEng/article/view/5108
spellingShingle Varvara Romanova
Ruslan Balokhonov
Evgeniya Emelianova
Olga Zinovieva
Aleksandr Zinoviev
MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
Facta Universitatis. Series: Mechanical Engineering
title MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
title_full MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
title_fullStr MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
title_full_unstemmed MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
title_short MICROSTRUCTURE-BASED SIMULATIONS OF QUASISTATIC DEFORMATION USING AN EXPLICIT DYNAMIC APPROACH
title_sort microstructure based simulations of quasistatic deformation using an explicit dynamic approach
url http://casopisi.junis.ni.ac.rs/index.php/FUMechEng/article/view/5108
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AT ruslanbalokhonov microstructurebasedsimulationsofquasistaticdeformationusinganexplicitdynamicapproach
AT evgeniyaemelianova microstructurebasedsimulationsofquasistaticdeformationusinganexplicitdynamicapproach
AT olgazinovieva microstructurebasedsimulationsofquasistaticdeformationusinganexplicitdynamicapproach
AT aleksandrzinoviev microstructurebasedsimulationsofquasistaticdeformationusinganexplicitdynamicapproach