Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization

A bottom-up material modeling based on a nonlocal crystal plasticity model requires information of a large set of physical and phenomenological parameters. Because of the many material parameters, it is inherently difficult to determine the nonlocal crystal plasticity parameters. Therefore, a robust...

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Main Authors: Mahdieh Shahmardani, Napat Vajragupta, Alexander Hartmaier
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/3/735
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spelling doaj-274b619f918344ed900ac4d9bc0679ac2020-11-25T01:42:25ZengMDPI AGMaterials1996-19442020-02-0113373510.3390/ma13030735ma13030735Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model ParametrizationMahdieh Shahmardani0Napat Vajragupta1Alexander Hartmaier2Interdisciplinary Centre for Advanced Materials Simulation (ICAMS), Ruhr-Universität Bochum, Universitätsstr. 150, 44801 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation (ICAMS), Ruhr-Universität Bochum, Universitätsstr. 150, 44801 Bochum, GermanyInterdisciplinary Centre for Advanced Materials Simulation (ICAMS), Ruhr-Universität Bochum, Universitätsstr. 150, 44801 Bochum, GermanyA bottom-up material modeling based on a nonlocal crystal plasticity model requires information of a large set of physical and phenomenological parameters. Because of the many material parameters, it is inherently difficult to determine the nonlocal crystal plasticity parameters. Therefore, a robust method is proposed to parameterize the nonlocal crystal plasticity model of a body-centered cubic (BCC) material by combining a nanoindentation test and inverse analysis. Nanoindentation tests returned the load−displacement curve and surface imprint of the considered sample. The inverse analysis is developed based on trust-region-reflective algorithm, which is the most robust optimization algorithm for the considered non-convex problem. The discrepancy function is defined to minimize both the load−displacement curves and the surface topologies of the considered material under applying varied indentation forces obtained from numerical models and experimental output. The numerical model results based on the identified material properties show good agreement with the experimental output. Finally, a sensitivity analysis performed changing the nonlocal crystal plasticity parameters in a predefined range emphasized that the geometrical factor has the most significant influence on the load−displacement curve and surface imprint parameters.https://www.mdpi.com/1996-1944/13/3/735nanoindentation testinverse analysistrust-region-reflective algorithmnonlocal crystal plasticitygeometry necessary dislocationbcc material
collection DOAJ
language English
format Article
sources DOAJ
author Mahdieh Shahmardani
Napat Vajragupta
Alexander Hartmaier
spellingShingle Mahdieh Shahmardani
Napat Vajragupta
Alexander Hartmaier
Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
Materials
nanoindentation test
inverse analysis
trust-region-reflective algorithm
nonlocal crystal plasticity
geometry necessary dislocation
bcc material
author_facet Mahdieh Shahmardani
Napat Vajragupta
Alexander Hartmaier
author_sort Mahdieh Shahmardani
title Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
title_short Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
title_full Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
title_fullStr Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
title_full_unstemmed Robust Optimization Scheme for Inverse Method for Crystal Plasticity Model Parametrization
title_sort robust optimization scheme for inverse method for crystal plasticity model parametrization
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-02-01
description A bottom-up material modeling based on a nonlocal crystal plasticity model requires information of a large set of physical and phenomenological parameters. Because of the many material parameters, it is inherently difficult to determine the nonlocal crystal plasticity parameters. Therefore, a robust method is proposed to parameterize the nonlocal crystal plasticity model of a body-centered cubic (BCC) material by combining a nanoindentation test and inverse analysis. Nanoindentation tests returned the load−displacement curve and surface imprint of the considered sample. The inverse analysis is developed based on trust-region-reflective algorithm, which is the most robust optimization algorithm for the considered non-convex problem. The discrepancy function is defined to minimize both the load−displacement curves and the surface topologies of the considered material under applying varied indentation forces obtained from numerical models and experimental output. The numerical model results based on the identified material properties show good agreement with the experimental output. Finally, a sensitivity analysis performed changing the nonlocal crystal plasticity parameters in a predefined range emphasized that the geometrical factor has the most significant influence on the load−displacement curve and surface imprint parameters.
topic nanoindentation test
inverse analysis
trust-region-reflective algorithm
nonlocal crystal plasticity
geometry necessary dislocation
bcc material
url https://www.mdpi.com/1996-1944/13/3/735
work_keys_str_mv AT mahdiehshahmardani robustoptimizationschemeforinversemethodforcrystalplasticitymodelparametrization
AT napatvajragupta robustoptimizationschemeforinversemethodforcrystalplasticitymodelparametrization
AT alexanderhartmaier robustoptimizationschemeforinversemethodforcrystalplasticitymodelparametrization
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