Mechanical Behavior and Constitutive Model of Basalt-Fiber Textile-Reinforced Engineered Cementitious Composite Under Off-Axis Tension

Basalt-fiber textile-reinforced engineered cementitious composite (BTR-ECC) combines favorable durability, cost-effectiveness, and mechanics, making it a viable option for structural retrofitting. Although axial behavior is well-documented, off-axis loading zones often constitute structural weak points. To address this gap, this study experimentally and theoretically examines the mechanical responses and failure mechanisms of BTR-ECC at off-axis tensile angles of 0°, 15°, 30°, and 45°. The results demonstrate that: (1) The tensile stress–strain curves exhibit a distinct trilinear characteristic (linear elastic, strain-hardening, and fracture), featuring densely distributed microcracks confined to 30–50 μm. Dominant failure modes include textile rupture, interfacial debonding and pull-out, and PVA fiber bridging. (2) With increasing angles, tensile strength at 0°, 15°, 30°, and 45° surpasses plain ECC by 84.8%, 73.6%, 52.9%, and 54.0%, respectively, confirming effective synergistic load transfer between the basalt-fiber textile and the matrix. Despite progressive strength degradation, the strain energy density remains relatively stable across all orientations, indicating robust energy dissipation capacity. (3) A phenomenological constitutive model based on the tangent modulus approach is established to describe the off-axis tensile response. The model shows good agreement with the experimental data and may serve as a reference for the analysis of BTR-ECC structures within the calibrated range of the four tested angles.

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Publication Details

Journal
Materials
Published
2026-09-11
DOI
https://doi.org/10.3390/ma19183883
Primary Topic
Masonry and Concrete Structural Analysis
Type
article
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article

Mechanical Behavior and Constitutive Model of Basalt-Fiber Textile-Reinforced Engineered Cementitious Composite Under Off-Axis Tension

Qiangru Shen, Zhirui An, Zhu Gao, Ruihuan Wang et al.
Materials
Masonry and Concrete Structural Analysis
article

Mechanical Behavior and Constitutive Model of Basalt-Fiber Textile-Reinforced Engineered Cementitious Composite Under Off-Axis Tension

Qiangru Shen, Zhirui An, Zhu Gao, Ruihuan Wang, Fahram Ayar, Shiwen Sun, Yicui Zheng, Yanchao Wang, Yao Li
article en

Abstract

Basalt-fiber textile-reinforced engineered cementitious composite (BTR-ECC) combines favorable durability, cost-effectiveness, and mechanics, making it a viable option for structural retrofitting. Although axial behavior is well-documented, off-axis loading zones often constitute structural weak points. To address this gap, this study experimentally and theoretically examines the mechanical responses and failure mechanisms of BTR-ECC at off-axis tensile angles of 0°, 15°, 30°, and 45°. The results demonstrate that: (1) The tensile stress–strain curves exhibit a distinct trilinear characteristic (linear elastic, strain-hardening, and fracture), featuring densely distributed microcracks confined to 30–50 μm. Dominant failure modes include textile rupture, interfacial debonding and pull-out, and PVA fiber bridging. (2) With increasing angles, tensile strength at 0°, 15°, 30°, and 45° surpasses plain ECC by 84.8%, 73.6%, 52.9%, and 54.0%, respectively, confirming effective synergistic load transfer between the basalt-fiber textile and the matrix. Despite progressive strength degradation, the strain energy density remains relatively stable across all orientations, indicating robust energy dissipation capacity. (3) A phenomenological constitutive model based on the tangent modulus approach is established to describe the off-axis tensile response. The model shows good agreement with the experimental data and may serve as a reference for the analysis of BTR-ECC structures within the calibrated range of the four tested angles.

MaterialsVol. 19(18)
Nantong University (CN), China University of Mining and Technology (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 17%
Masonry and Concrete Structural Analysis
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