ÚTEFČVUT Ústav technické a experimentální fyziky ČVUT v PrazeInstitute of Experimental and Applied Physics, CTU in Prague

On-the-Fly Fast X-Ray Tomography Using a CdTe Pixelated Detector-Application in Mechanical Testing

NázevTitle
On-the-Fly Fast X-Ray Tomography Using a CdTe Pixelated Detector-Application in Mechanical TestingOn-the-Fly Fast X-Ray Tomography Using a CdTe Pixelated Detector-Application in Mechanical Testing
Druh výsledkuResult type
Článek v časopiseJournal article
AutořiAuthors
I. Kumpova, M. Vopalensky, T. Fila, D. Kytyr, M. Pichotka
Klíčová slovaKeywords
concrete, fracture
DOIDOI
10.1109/TNS.2018.2873830
Časopis / citaceJournal / citation
IEEE Transactions on Nuclear Science 65(12), 2870-2876 (2018) · ISSN 0018-9499
RokYear
2018
JazykLanguage
eng
ZáznamyRecords
ProjektProject
Institucionální podpora na rozvoj výzkumné org.Institucionální podpora na rozvoj výzkumné org.
CitovánoCited by
15 (OpenAlex)
2019: 22020: 32021: 22022: 22023: 22024: 22025: 12026: 1
Citace ke staženíDownload citation
TXT · BibTeX

AbstraktAbstract

Fast tomography measurements are still done almost exclusively within the domain of synchrotrons. However, recent progress in radio diagnostic instrumentation has enabled researchers to perform time-lapse computed tomography (4-D CT) even under laboratory conditions with standard X-ray sources. Thus, fast time-dependent processes within materials with relatively high X-ray attenuation can be monitored. This paper describes the in situ tomographic monitoring of crack formation and propagation in a quasi-brittle silicate matrix composite subjected to three-point bending. A 3-D CT volume containing the region of interest in the specimen is imaged over a period of time, while the continuously increasing load causes crack initiation and propagation, creating a dynamic volume data set. An acquisition time of 50 s for one full-angle tomography with 400 projections makes this tomographic system one of the fastest systems in the world. The resulting visualizations provide qualitative information concerning progressive crack propagation within areas of lower material density. Differential images then allow displaying the spatial orientation of the crack over time. The results were further processed for a quantitative analysis of image quality using various methods of beam hardening correction.

Fast tomography measurements are still done almost exclusively within the domain of synchrotrons. However, recent progress in radio diagnostic instrumentation has enabled researchers to perform time-lapse computed tomography (4-D CT) even under laboratory conditions with standard X-ray sources. Thus, fast time-dependent processes within materials with relatively high X-ray attenuation can be monitored. This paper describes the in situ tomographic monitoring of crack formation and propagation in a quasi-brittle silicate matrix composite subjected to three-point bending. A 3-D CT volume containing the region of interest in the specimen is imaged over a period of time, while the continuously increasing load causes crack initiation and propagation, creating a dynamic volume data set. An acquisition time of 50 s for one full-angle tomography with 400 projections makes this tomographic system one of the fastest systems in the world. The resulting visualizations provide qualitative information concerning progressive crack propagation within areas of lower material density. Differential images then allow displaying the spatial orientation of the crack over time. The results were further processed for a quantitative analysis of image quality using various methods of beam hardening correction.

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