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Directional pore structure governs compressive anisotropy in 3D printed concrete

delete2026-04-27
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H
Hanbin Cheng
F
Faisal N. Aljuwayhel
S
S.H. Chu *
A
Aleksandra Radlińska
DOI:10.1016/j.cemconcomp.2026.106640delete
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Abstract

Abstract

En 中文
3D printed concrete produced from an identical mixture exhibits distinct compressive strengths under different printing paths. This anisotropy originates from printing-induced pore alignment that alters load transfer. Scalar porosity and qualitative interlayer descriptors lack loading-direction resolution and cannot capture direction-specific strength penalties or in-plane strength re-ranking. To address this gap, a loading-direction-resolved pore directional index is developed to link pore elongation, area weighting, and orientation to direction-specific defect severity. Specimens produced with four representative printing paths and a cast control are investigated using a fixed mixture. Directional compressive strengths along x, y, and z are quantitatively linked to pore structure on x–z and y–z sections. This mechanism is validated using image-informed finite-element models of reconstructed pore-scale representative volume elements subjected to directional compression. The simulated strength ratios agree with experiments, with maximum relative errors of 13.69% (x–z) and 9.42% (y–z), demonstrating that pore structure controls printing path-dependent anisotropy.
Keywords:
3D concrete printing
Compressive anisotropy
Pore structure
Printing path
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Cement and Concrete Composites cover
Cement and Concrete Composites
IF:
13.1
Papers:
5.4K
Citations:
5.1W

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pennsylvania state university
Scholars:
2.8K
Papers: 1.6K
Citations: 0
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