Implementation of grain mapping by diffraction contrast tomography on a conventional laboratory tomography setup with various detectors

被引:2
作者
Fang, Haixing [1 ,2 ,3 ]
Ludwig, Wolfgang [2 ,3 ]
Lhuissier, Pierre [1 ]
机构
[1] Univ Grenoble Alpes, Grenoble INP, CNRS, SIMaP, 1130 Rue Piscine, F-38402 St Martin Dheres, France
[2] European Synchrotron Radiat Facil, 71 Ave Martyrs, F-38000 Grenoble, France
[3] Univ Lyon, CNRS MATEIS, INSA Lyon, F-69621 Villeurbanne, France
关键词
diffraction contrast tomography; grain reconstruction; CCD detectors; flat panel detectors; synchrotron X-ray diffraction; MICROSCOPY; RECONSTRUCTION; GROWTH; FIELDS; 3D;
D O I
10.1107/S1600576723003874
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Laboratory-based diffraction contrast tomography (LabDCT) is a novel technique used to resolve grain orientations and shapes in three dimensions at the micrometre scale using laboratory X-ray sources, allowing the user to overcome the constraint of limited access to synchrotron facilities. To foster the development of this technique, the implementation of LabDCT is illustrated in detail using a conventional laboratory-based X-ray tomography setup, and it is shown that such implementation is possible with the two most common types of detectors: CCD and flat panel. As a benchmark, LabDCT projections were acquired on an AlCu alloy sample using the two types of detectors at different exposure times. Grain maps were subsequently reconstructed using the open-source grain reconstruction method reported in the authors' previous work. To characterize the detection limit and the spatial resolution for the current implementation, the reconstructed LabDCT grain maps were compared with the map obtained from a synchrotron measurement, which is considered as ground truth. The results show that the final grain maps from measurements by the CCD and flat panel detector are similar and show comparable quality, while the CCD gives a much better contrast-to-noise ratio than the flat panel. The analysis of the grain maps reconstructed from measurements with different exposure times suggests that a grain map of comparable quality could be obtained in less than 1 h total acquisition time without a significant loss of grain reconstruction quality and indicates a clear potential for time-lapse LabDCTexperiments. The current implementation is suggested to promote the generic use of the LabDCT technique for grain mapping on conventional tomography setups.
引用
收藏
页码:810 / 824
页数:15
相关论文
共 36 条
[1]   Texture Analysis with MTEX - Free and Open Source Software Toolbox [J].
Bachmann, F. ;
Hielscher, R. ;
Schaeben, H. .
TEXTURE AND ANISOTROPY OF POLYCRYSTALS III, 2010, 160 :63-+
[2]   3D grain reconstruction from laboratory diffraction contrast tomography [J].
Bachmann, Florian ;
Bale, Hrishikesh ;
Gueninchault, Nicolas ;
Holzner, Christian ;
Lauridsen, Erik Mejdal .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2019, 52 (03) :643-651
[3]   Photon Counting Detectors for X-Ray Imaging With Emphasis on CT [J].
Ballabriga, R. ;
Alozy, J. ;
Bandi, F. N. ;
Campbell, M. ;
Egidos, N. ;
Fernandez-Tenllado, J. M. ;
Heijne, E. H. M. ;
Kremastiotis, I. ;
Llopart, X. ;
Madsen, B. J. ;
Pennicard, D. ;
Sriskaran, V. ;
Tlustos, L. .
IEEE TRANSACTIONS ON RADIATION AND PLASMA MEDICAL SCIENCES, 2021, 5 (04) :422-440
[4]   PIXIE III: a very large area photon-counting CMOS pixel ASIC for sharp X-ray spectral imaging [J].
Bellazzini, R. ;
Brez, A. ;
Spandre, G. ;
Minuti, M. ;
Pinchera, M. ;
Delogu, P. ;
de Ruvo, P. L. ;
Vincenzi, A. .
JOURNAL OF INSTRUMENTATION, 2015, 10
[5]   Far-field high-energy diffraction microscopy: a tool for intergranular orientation and strain analysis [J].
Bernier, J. V. ;
Barton, N. R. ;
Lienert, U. ;
Miller, M. P. .
JOURNAL OF STRAIN ANALYSIS FOR ENGINEERING DESIGN, 2011, 46 (07) :527-547
[6]   Grain boundary velocity and curvature are not correlated in Ni polycrystals [J].
Bhattacharya, Aditi ;
Shen, Yu-Feng ;
Hefferan, Christopher M. ;
Li, Shiu Fai ;
Lind, Jonathan ;
Suter, Robert M. ;
Krill, Carl E., III ;
Rohrer, Gregory S. .
SCIENCE, 2021, 374 (6564) :189-+
[7]   3D grain mapping by laboratory X-ray diffraction contrast tomography implemented on a conventional tomography setup [J].
Fang, H. ;
Granger, R. ;
Ludwig, W. ;
Lhuissier, P. .
42ND RISO INTERNATIONAL SYMPOSIUM ON MATERIALS SCIENCE: MICROSTRUCTURAL VARIABILITY: PROCESSING, ANALYSIS, MECHANISMS AND PROPERTIES, 2022, 1249
[8]   Deep learning for improving non-destructive grain mapping in 3D [J].
Fang, H. ;
Hovad, E. ;
Zhang, Y. ;
Clemmensen, L. K. H. ;
Ersboll, B. Kjaer ;
Jensen, D. Juul .
IUCRJ, 2021, 8 :719-731
[9]   Improved grain mapping by laboratory X-ray diffraction contrast tomography [J].
Fang, H. ;
Jensen, D. Juul ;
Zhang, Y. .
IUCRJ, 2021, 8 :559-573
[10]   A flexible and standalone forward simulation model for laboratory X-ray diffraction contrast tomography [J].
Fang, H. ;
Jensen, D. Juul ;
Zhang, Y. .
ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2020, 76 :652-663