Cargando…

Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy

Two data evaluation concepts for X-ray stress analysis based on energy-dispersive diffraction on polycrystalline materials with cubic crystal structure, almost random crystallographic texture and strong single-crystal elastic anisotropy are subjected to comparative assessment. The aim is the study o...

Descripción completa

Detalles Bibliográficos
Autores principales: Genzel, Christoph, Klaus, Manuela, Hempel, Nico, Nitschke-Pagel, Thomas, Pantleon, Karen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077851/
https://www.ncbi.nlm.nih.gov/pubmed/37032970
http://dx.doi.org/10.1107/S1600576723001759
_version_ 1785020394450714624
author Genzel, Christoph
Klaus, Manuela
Hempel, Nico
Nitschke-Pagel, Thomas
Pantleon, Karen
author_facet Genzel, Christoph
Klaus, Manuela
Hempel, Nico
Nitschke-Pagel, Thomas
Pantleon, Karen
author_sort Genzel, Christoph
collection PubMed
description Two data evaluation concepts for X-ray stress analysis based on energy-dispersive diffraction on polycrystalline materials with cubic crystal structure, almost random crystallographic texture and strong single-crystal elastic anisotropy are subjected to comparative assessment. The aim is the study of the residual stress state in hard-to-reach measurement points, for which the sin(2)ψ method is not applicable due to beam shadowing at larger sample tilting. This makes the approaches attractive for stress analysis in engineering parts with complex shapes, for example. Both approaches are based on the assumption of a biaxial stress state within the irradiated sample volume. They exploit in different ways the elastic anisotropy of individual crystallites acting at the microscopic scale and the anisotropy imposed on the material by the near-surface stress state at the macroscopic scale. They therefore complement each other, in terms of both their preconditions and their results. The first approach is based on the evaluation of strain differences, which makes it less sensitive to variations in the strain-free lattice parameter a (0). Since it assumes a homogeneous stress state within the irradiated sample volume, it provides an average value of the in-plane stresses. The second approach exploits the sensitivity of the lattice strain to changes in a (0). Consequently, it assumes a homogeneous chemical composition but provides a stress profile within the information depth. Experimental examples from different fields in materials science, namely shot peening of austenitic steel and in situ stress analysis during welding, are presented to demonstrate the suitability of the proposed methods.
format Online
Article
Text
id pubmed-10077851
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher International Union of Crystallography
record_format MEDLINE/PubMed
spelling pubmed-100778512023-04-07 Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy Genzel, Christoph Klaus, Manuela Hempel, Nico Nitschke-Pagel, Thomas Pantleon, Karen J Appl Crystallogr Research Papers Two data evaluation concepts for X-ray stress analysis based on energy-dispersive diffraction on polycrystalline materials with cubic crystal structure, almost random crystallographic texture and strong single-crystal elastic anisotropy are subjected to comparative assessment. The aim is the study of the residual stress state in hard-to-reach measurement points, for which the sin(2)ψ method is not applicable due to beam shadowing at larger sample tilting. This makes the approaches attractive for stress analysis in engineering parts with complex shapes, for example. Both approaches are based on the assumption of a biaxial stress state within the irradiated sample volume. They exploit in different ways the elastic anisotropy of individual crystallites acting at the microscopic scale and the anisotropy imposed on the material by the near-surface stress state at the macroscopic scale. They therefore complement each other, in terms of both their preconditions and their results. The first approach is based on the evaluation of strain differences, which makes it less sensitive to variations in the strain-free lattice parameter a (0). Since it assumes a homogeneous stress state within the irradiated sample volume, it provides an average value of the in-plane stresses. The second approach exploits the sensitivity of the lattice strain to changes in a (0). Consequently, it assumes a homogeneous chemical composition but provides a stress profile within the information depth. Experimental examples from different fields in materials science, namely shot peening of austenitic steel and in situ stress analysis during welding, are presented to demonstrate the suitability of the proposed methods. International Union of Crystallography 2023-04-01 /pmc/articles/PMC10077851/ /pubmed/37032970 http://dx.doi.org/10.1107/S1600576723001759 Text en © Christoph Genzel et al. 2023 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
Genzel, Christoph
Klaus, Manuela
Hempel, Nico
Nitschke-Pagel, Thomas
Pantleon, Karen
Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title_full Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title_fullStr Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title_full_unstemmed Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title_short Energy-dispersive X-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
title_sort energy-dispersive x-ray stress analysis under geometric constraints: exploiting the material’s inherent anisotropy
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077851/
https://www.ncbi.nlm.nih.gov/pubmed/37032970
http://dx.doi.org/10.1107/S1600576723001759
work_keys_str_mv AT genzelchristoph energydispersivexraystressanalysisundergeometricconstraintsexploitingthematerialsinherentanisotropy
AT klausmanuela energydispersivexraystressanalysisundergeometricconstraintsexploitingthematerialsinherentanisotropy
AT hempelnico energydispersivexraystressanalysisundergeometricconstraintsexploitingthematerialsinherentanisotropy
AT nitschkepagelthomas energydispersivexraystressanalysisundergeometricconstraintsexploitingthematerialsinherentanisotropy
AT pantleonkaren energydispersivexraystressanalysisundergeometricconstraintsexploitingthematerialsinherentanisotropy