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High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures

Three-dimensional X-ray diffraction microscopy, 3DXRD, has become an established tool for orientation and strain mapping of bulk polycrystals. However, it is limited to a finite spatial resolution of ∼1.5–3 µm. Presented here is a high-resolution modality of the technique, HR-3DXRD, for 3D mapping o...

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Autores principales: Kutsal, Mustafacan, Poulsen, Henning Friis, Winther, Grethe, Sørensen, Henning Osholm, Detlefs, Carsten
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9533755/
https://www.ncbi.nlm.nih.gov/pubmed/36249499
http://dx.doi.org/10.1107/S1600576722007361
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author Kutsal, Mustafacan
Poulsen, Henning Friis
Winther, Grethe
Sørensen, Henning Osholm
Detlefs, Carsten
author_facet Kutsal, Mustafacan
Poulsen, Henning Friis
Winther, Grethe
Sørensen, Henning Osholm
Detlefs, Carsten
author_sort Kutsal, Mustafacan
collection PubMed
description Three-dimensional X-ray diffraction microscopy, 3DXRD, has become an established tool for orientation and strain mapping of bulk polycrystals. However, it is limited to a finite spatial resolution of ∼1.5–3 µm. Presented here is a high-resolution modality of the technique, HR-3DXRD, for 3D mapping of submicrometre-sized crystallites or subgrains with high spatial and angular resolution. Specifically, the method is targeted to visualization of metal microstructures at industrially relevant degrees of plastic deformation. Exploiting intrinsic crystallographic properties of such microstructures, the high resolution is obtained by placing a high-resolution imaging detector in between the near-field and far-field regimes. This configuration enables 3D mapping of deformation microstructure by determining the centre of mass and volume of the subgrains and generating maps by tessellation. The setup is presented, together with a data analysis approach. Full-scale simulations are used to determine limitations and to demonstrate HR-3DXRD on realistic phantoms. Misalignments in the setup are shown to cause negligible shifts in the position and orientation of the subgrains. Decreasing the signal-to-noise ratio is observed to lead primarily to a loss in the number of determined diffraction spots. Simulations of an α-Fe sample deformed to a strain of ε( vM ) = 0.3 and comprising 828 subgrains show that, despite the high degree of local texture, 772 of the subgrains are retrieved with a spatial accuracy of 0.1 µm and an orientation accuracy of 0.0005°.
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spelling pubmed-95337552022-10-13 High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures Kutsal, Mustafacan Poulsen, Henning Friis Winther, Grethe Sørensen, Henning Osholm Detlefs, Carsten J Appl Crystallogr Research Papers Three-dimensional X-ray diffraction microscopy, 3DXRD, has become an established tool for orientation and strain mapping of bulk polycrystals. However, it is limited to a finite spatial resolution of ∼1.5–3 µm. Presented here is a high-resolution modality of the technique, HR-3DXRD, for 3D mapping of submicrometre-sized crystallites or subgrains with high spatial and angular resolution. Specifically, the method is targeted to visualization of metal microstructures at industrially relevant degrees of plastic deformation. Exploiting intrinsic crystallographic properties of such microstructures, the high resolution is obtained by placing a high-resolution imaging detector in between the near-field and far-field regimes. This configuration enables 3D mapping of deformation microstructure by determining the centre of mass and volume of the subgrains and generating maps by tessellation. The setup is presented, together with a data analysis approach. Full-scale simulations are used to determine limitations and to demonstrate HR-3DXRD on realistic phantoms. Misalignments in the setup are shown to cause negligible shifts in the position and orientation of the subgrains. Decreasing the signal-to-noise ratio is observed to lead primarily to a loss in the number of determined diffraction spots. Simulations of an α-Fe sample deformed to a strain of ε( vM ) = 0.3 and comprising 828 subgrains show that, despite the high degree of local texture, 772 of the subgrains are retrieved with a spatial accuracy of 0.1 µm and an orientation accuracy of 0.0005°. International Union of Crystallography 2022-08-30 /pmc/articles/PMC9533755/ /pubmed/36249499 http://dx.doi.org/10.1107/S1600576722007361 Text en © M. Kutsal et al. 2022 https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Kutsal, Mustafacan
Poulsen, Henning Friis
Winther, Grethe
Sørensen, Henning Osholm
Detlefs, Carsten
High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title_full High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title_fullStr High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title_full_unstemmed High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title_short High-resolution 3D X-ray diffraction microscopy: 3D mapping of deformed metal microstructures
title_sort high-resolution 3d x-ray diffraction microscopy: 3d mapping of deformed metal microstructures
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9533755/
https://www.ncbi.nlm.nih.gov/pubmed/36249499
http://dx.doi.org/10.1107/S1600576722007361
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