A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246
A titanium alloy sample (#6246) containing a linear friction weld has been imaged nondestructively using tomographic energy-dispersive diffraction imaging (TEDDI). The diffraction patterns measured at each point of the TEDDI image permitted identification of the material and phases present (5%). The...
Main Authors: | , , , , , , , , , , , |
---|---|
Format: | Journal article |
Language: | English |
Published: |
2011
|
_version_ | 1826270896319365120 |
---|---|
author | Cernik, R Hansson, C Martin, C Preuss, M Attallah, M Korsunsky, A Belnoue, J Jun, T Barnes, P Jacques, S Sochi, T Lazzari, O |
author_facet | Cernik, R Hansson, C Martin, C Preuss, M Attallah, M Korsunsky, A Belnoue, J Jun, T Barnes, P Jacques, S Sochi, T Lazzari, O |
author_sort | Cernik, R |
collection | OXFORD |
description | A titanium alloy sample (#6246) containing a linear friction weld has been imaged nondestructively using tomographic energy-dispersive diffraction imaging (TEDDI). The diffraction patterns measured at each point of the TEDDI image permitted identification of the material and phases present (5%). The image also showed the preferred orientation and size-strain distribution present within the sample without the need for any further sample preparation. The preferred orientation was observed in clusters with average dimensions very similar to the experimental spatial resolution (400 m). The length scales and preferred orientation distributions were consistent with orientation imaging microscopy measurements made by Szczepanski, Jha, Larsen and Jones [Metall. Mater. Trans. A (2008), 39, 2841-2851] where the microstructure development was linked to the grain growth of the parent material. The use of a high-energy X-ray distribution (30-80 keV) in the incident beam reduced systematic errors due to the source profile, sample and air absorption. The TEDDI data from each voxel were reduced to an angle-dispersive form and Rietveld refined to a mean χ2 of 1.4. The mean lattice parameter error (d/d) ranged from 10-4 for the highly crystalline regions to 10-3 for regions of very strong preferred orientation and internal strain. The March-Dollase preferred orientation errors refined to an average value of 2%. A 100% correlation between observed fluorescence and diffraction peak broadening was observed, providing further evidence for vicinal strain broadening. © 2011 International Union of Crystallography Printed in Singapore-all rights reserved. |
first_indexed | 2024-03-06T21:48:03Z |
format | Journal article |
id | oxford-uuid:4a4ab77a-afa4-4272-b736-d6253c84dd52 |
institution | University of Oxford |
language | English |
last_indexed | 2024-03-06T21:48:03Z |
publishDate | 2011 |
record_format | dspace |
spelling | oxford-uuid:4a4ab77a-afa4-4272-b736-d6253c84dd522022-03-26T15:36:38ZA synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:4a4ab77a-afa4-4272-b736-d6253c84dd52EnglishSymplectic Elements at Oxford2011Cernik, RHansson, CMartin, CPreuss, MAttallah, MKorsunsky, ABelnoue, JJun, TBarnes, PJacques, SSochi, TLazzari, OA titanium alloy sample (#6246) containing a linear friction weld has been imaged nondestructively using tomographic energy-dispersive diffraction imaging (TEDDI). The diffraction patterns measured at each point of the TEDDI image permitted identification of the material and phases present (5%). The image also showed the preferred orientation and size-strain distribution present within the sample without the need for any further sample preparation. The preferred orientation was observed in clusters with average dimensions very similar to the experimental spatial resolution (400 m). The length scales and preferred orientation distributions were consistent with orientation imaging microscopy measurements made by Szczepanski, Jha, Larsen and Jones [Metall. Mater. Trans. A (2008), 39, 2841-2851] where the microstructure development was linked to the grain growth of the parent material. The use of a high-energy X-ray distribution (30-80 keV) in the incident beam reduced systematic errors due to the source profile, sample and air absorption. The TEDDI data from each voxel were reduced to an angle-dispersive form and Rietveld refined to a mean χ2 of 1.4. The mean lattice parameter error (d/d) ranged from 10-4 for the highly crystalline regions to 10-3 for regions of very strong preferred orientation and internal strain. The March-Dollase preferred orientation errors refined to an average value of 2%. A 100% correlation between observed fluorescence and diffraction peak broadening was observed, providing further evidence for vicinal strain broadening. © 2011 International Union of Crystallography Printed in Singapore-all rights reserved. |
spellingShingle | Cernik, R Hansson, C Martin, C Preuss, M Attallah, M Korsunsky, A Belnoue, J Jun, T Barnes, P Jacques, S Sochi, T Lazzari, O A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title | A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title_full | A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title_fullStr | A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title_full_unstemmed | A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title_short | A synchrotron tomographic energy-dispersive diffraction imaging study of the aerospace alloy Ti 6246 |
title_sort | synchrotron tomographic energy dispersive diffraction imaging study of the aerospace alloy ti 6246 |
work_keys_str_mv | AT cernikr asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT hanssonc asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT martinc asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT preussm asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT attallahm asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT korsunskya asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT belnouej asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT junt asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT barnesp asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT jacquess asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT sochit asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT lazzario asynchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT cernikr synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT hanssonc synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT martinc synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT preussm synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT attallahm synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT korsunskya synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT belnouej synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT junt synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT barnesp synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT jacquess synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT sochit synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 AT lazzario synchrotrontomographicenergydispersivediffractionimagingstudyoftheaerospacealloyti6246 |