Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet

The evolution of crystal damage in rolled AA5182-O aluminum alloy sheet was studied by experiment and finite element simulation in this paper. Grain size characteristic on rolling anisotropy was determined by electron backscatter diffraction (EBSD) test and section line method, and the average grain...

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Main Authors: Gui Li, Saisai Cui
Format: Article
Language:English
Published: Elsevier 2020-09-01
Series:Journal of Materials Research and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785420315866
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spelling doaj-c3b11eb8b5de4caba2bcf9a4f0c7fc132020-11-25T03:55:51ZengElsevierJournal of Materials Research and Technology2238-78542020-09-01951055910575Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheetGui Li0Saisai Cui1Key Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430081, People’s Republic of China; Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan 430081, People’s Republic of China; Corresponding author.Key Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430081, People’s Republic of China; Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan 430081, People’s Republic of ChinaThe evolution of crystal damage in rolled AA5182-O aluminum alloy sheet was studied by experiment and finite element simulation in this paper. Grain size characteristic on rolling anisotropy was determined by electron backscatter diffraction (EBSD) test and section line method, and the average grain size of R00°and R90° with the rolling direction was achieved. An improved grain modeling method was proposed by adjusting base rectangle and regularity coefficient based on Voronoi method. It established six finite element models of uniaxial tension grains, which considers anisotropic grain size and regularity coefficient. The Gurson–Tvergaard–Needleman (GTN) model was applied to analyze damage evolution of elements in grains, and whose damage parameters were achieved by the tensile test and the response surface method. The mechanical properties of grain boundaries were characterized by cohesive zone model. The Abaqus software was adopted to conduct the uniaxial tension finite element analysis to investigate influence of anisotropic grain size, number, and regularity coefficient on plasticity damage evolution of this material. The results show that when regularity coefficient of is 0.01 and 007, the fracture elongation of 54 grains model which is considering grain sizes of R00° and R90° is the closest to experimental results.http://www.sciencedirect.com/science/article/pii/S2238785420315866AA5182-O aluminum alloyGrain modelingDamage evolutionCohesive zone model
collection DOAJ
language English
format Article
sources DOAJ
author Gui Li
Saisai Cui
spellingShingle Gui Li
Saisai Cui
Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
Journal of Materials Research and Technology
AA5182-O aluminum alloy
Grain modeling
Damage evolution
Cohesive zone model
author_facet Gui Li
Saisai Cui
author_sort Gui Li
title Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
title_short Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
title_full Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
title_fullStr Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
title_full_unstemmed Grain modeling and finite element simulation of damage evolution for AA5182-O aluminum alloy sheet
title_sort grain modeling and finite element simulation of damage evolution for aa5182-o aluminum alloy sheet
publisher Elsevier
series Journal of Materials Research and Technology
issn 2238-7854
publishDate 2020-09-01
description The evolution of crystal damage in rolled AA5182-O aluminum alloy sheet was studied by experiment and finite element simulation in this paper. Grain size characteristic on rolling anisotropy was determined by electron backscatter diffraction (EBSD) test and section line method, and the average grain size of R00°and R90° with the rolling direction was achieved. An improved grain modeling method was proposed by adjusting base rectangle and regularity coefficient based on Voronoi method. It established six finite element models of uniaxial tension grains, which considers anisotropic grain size and regularity coefficient. The Gurson–Tvergaard–Needleman (GTN) model was applied to analyze damage evolution of elements in grains, and whose damage parameters were achieved by the tensile test and the response surface method. The mechanical properties of grain boundaries were characterized by cohesive zone model. The Abaqus software was adopted to conduct the uniaxial tension finite element analysis to investigate influence of anisotropic grain size, number, and regularity coefficient on plasticity damage evolution of this material. The results show that when regularity coefficient of is 0.01 and 007, the fracture elongation of 54 grains model which is considering grain sizes of R00° and R90° is the closest to experimental results.
topic AA5182-O aluminum alloy
Grain modeling
Damage evolution
Cohesive zone model
url http://www.sciencedirect.com/science/article/pii/S2238785420315866
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AT saisaicui grainmodelingandfiniteelementsimulationofdamageevolutionforaa5182oaluminumalloysheet
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