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Analysis of microcracking processes in microconcrete under confined compression utilising synchrotron-based ultra-high speed X-ray phase contrast imaging.

Authors :
Forquin, P.
Francart, C.
Sapay, M.
Rack, A.
Cohen, A.
Levi-Hevroni, D.
Arrigoni, M.
Lukić, B.
Source :
International Journal of Impact Engineering. Apr2025, Vol. 198, pN.PAG-N.PAG. 1p.
Publication Year :
2025

Abstract

• Microconcrete is subjected to SHPB dynamic quasi-oedometric compression tests. • Damage process is visualized with MHz X-ray phase-contrast imaging. • Time-resolved measurements of sample axial strain and radial expansion are produced. • Non-linear analysis of mechanical response of polymeric confining cell is considered. • Microcracking develops from the equatorial zone of large spherical pores. In the present study, microconcrete (MC) samples were exposed to dynamic quasi-oedometric compression (QOC) tests and visualised in-situ by the means of MHz synchrotron X-ray phase-contrast imaging in the ESRF synchrotron in order to analyse the damage mechanisms governing the mechanical behaviour of concrete under high-strain-rate confined compression. To do so, small cylindrical samples were placed in polymeric confinement cell and dynamically compressed along their axial direction using SHPB (Split-Hopkinson Pressure Bar) set-up available in ID19 beamline in the European Synchrotron Radiation Facility (ESRF). The damage process was visualized with MHz X-ray phase-contrast imaging along with an ultra-high-speed camera operating at a recording frequency approximately 1 Mfps (million frames per second i.e., 880 ns interframe time). The axial stress and strain temporal profiles were obtained from standard Kolsky's (SHPB) data processing. In addition, data of radial stress and strain within the sample were deduced from non-linear analysis of the mechanical behaviour of the polycarbonate confining cell instrumented with a strain gauge. Finally, the onset and growth of microcracking observed from the equatorial zone of large spherical pores is correlated with deviatoric and pressure measurements showing how the pore collapse process develops during the applied mechanical loading. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0734743X
Volume :
198
Database :
Academic Search Index
Journal :
International Journal of Impact Engineering
Publication Type :
Academic Journal
Accession number :
182873578
Full Text :
https://doi.org/10.1016/j.ijimpeng.2024.105167