Microstructure and Stress Mapping in 3D at Industrially Relevant Degrees of Plastic Deformation

Fuente: arXiv
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Bibliographic Details
Main Authors: Henningsson, Axel, Kutsal, Mustafacan, Wright, Jonathan P., Ludwig, Wolfgang, Sørensen, Henning Osholm, Hall, Stephen A., Winther, Grethe, Poulsen, Henning F.
Format: Preprint
Published: 2024
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author Henningsson, Axel
Kutsal, Mustafacan
Wright, Jonathan P.
Ludwig, Wolfgang
Sørensen, Henning Osholm
Hall, Stephen A.
Winther, Grethe
Poulsen, Henning F.
author_facet Henningsson, Axel
Kutsal, Mustafacan
Wright, Jonathan P.
Ludwig, Wolfgang
Sørensen, Henning Osholm
Hall, Stephen A.
Winther, Grethe
Poulsen, Henning F.
contents Strength, ductility, and failure properties of metals are tailored by plastic deformation routes. Predicting these properties requires modeling of the structural dynamics and stress evolution taking place on several length scales. Progress has been hampered by a lack of representative 3D experimental data at industrially relevant degrees of deformation. We present an X-ray imaging based 3D mapping of an aluminum polycrystal deformed to the ultimate tensile strength (32% elongation). The extensive dataset reveals significant intra-grain stress variations (36 MPa) up to at least half of the inter-grain variations (76 MPa), which are dominated by grain orientation effects. Local intra-grain stress concentrations are candidates for damage nucleation. Such data are important for models of structure-property relations and damage.
format Preprint
id arxiv_https___arxiv_org_abs_2405_11644
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Microstructure and Stress Mapping in 3D at Industrially Relevant Degrees of Plastic Deformation
Henningsson, Axel
Kutsal, Mustafacan
Wright, Jonathan P.
Ludwig, Wolfgang
Sørensen, Henning Osholm
Hall, Stephen A.
Winther, Grethe
Poulsen, Henning F.
Materials Science
Strength, ductility, and failure properties of metals are tailored by plastic deformation routes. Predicting these properties requires modeling of the structural dynamics and stress evolution taking place on several length scales. Progress has been hampered by a lack of representative 3D experimental data at industrially relevant degrees of deformation. We present an X-ray imaging based 3D mapping of an aluminum polycrystal deformed to the ultimate tensile strength (32% elongation). The extensive dataset reveals significant intra-grain stress variations (36 MPa) up to at least half of the inter-grain variations (76 MPa), which are dominated by grain orientation effects. Local intra-grain stress concentrations are candidates for damage nucleation. Such data are important for models of structure-property relations and damage.
title Microstructure and Stress Mapping in 3D at Industrially Relevant Degrees of Plastic Deformation
topic Materials Science
url https://arxiv.org/abs/2405.11644