Dynamic deformation and fracture of porous cement: A high-speed X-ray phase contrast imaging study

Investigations on mechanical responses and failure mechanisms of porous cement to dynamic compression are essential for its applications as impact energy absorption material. This study conducts split Hopkinson pressure bar tests along with in situ high-speed X-ray phase contrast imaging (XPCI). Porous cements with three different porosities (4.8%, 10.4% and 18.7%) are examined at strain rates of 1800, 3600 and 5500 s −1 , respectively. The samples with higher porosity exhibits higher rate sensitivity in the investigated strain rate range, but lower peak strength at a given strain rate. A cone-shaped dynamic failure pattern of bulk cement specimens is observed through the XPCI and postmortem characterization, and crack propagating/branching/deflecting are found at the meso-scale. Quantitative analysis is carried out through digital image correlation, particle tracking velocimetry, and meso-scale finite element simulation, and reveals localized crushing bands.

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Publication Details

Journal
Construction and Building Materials
Published
2026-09-14
DOI
https://doi.org/10.1016/j.conbuildmat.2026.148104
Primary Topic
High-Velocity Impact and Material Behavior
Type
article
Field-Weighted Citation Impact
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article

Dynamic deformation and fracture of porous cement: A high-speed X-ray phase contrast imaging study

Yanlei Shang, J.Y. Hua, H.Z. Sun, S.N. Luo et al.
Construction and Building Materials
High-Velocity Impact and Material Behavior
article

Dynamic deformation and fracture of porous cement: A high-speed X-ray phase contrast imaging study

Yanlei Shang, J.Y. Hua, H.Z. Sun, S.N. Luo, B.B. Zhang, J. Xu, Y.L. Bian, Y. Cai
article en

Abstract

Investigations on mechanical responses and failure mechanisms of porous cement to dynamic compression are essential for its applications as impact energy absorption material. This study conducts split Hopkinson pressure bar tests along with in situ high-speed X-ray phase contrast imaging (XPCI). Porous cements with three different porosities (4.8%, 10.4% and 18.7%) are examined at strain rates of 1800, 3600 and 5500 s −1 , respectively. The samples with higher porosity exhibits higher rate sensitivity in the investigated strain rate range, but lower peak strength at a given strain rate. A cone-shaped dynamic failure pattern of bulk cement specimens is observed through the XPCI and postmortem characterization, and crack propagating/branching/deflecting are found at the meso-scale. Quantitative analysis is carried out through digital image correlation, particle tracking velocimetry, and meso-scale finite element simulation, and reveals localized crushing bands.

Construction and Building MaterialsVol. 543
Chinese Academy of Sciences (CN), Peac Institute of Multiscale Sciences (CN), Institute of High Energy Physics (CN), Ningbo Institute of Industrial Technology (CN), Southwest Jiaotong University (CN)
National Natural Science Foundation of China, Key Research and Development Program of Zhejiang Province
Affordable and clean energy
Openalex Percentile: Top 25%
High-Velocity Impact and Material Behavior
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Dynamic deformation and fracture of porous cement: A high-speed X-ray phase contrast imaging study — Yanlei Shang, J.Y. Hua, et al. · Construction and Building Materials (2026) | TGRS Research Map | TGRS