Evaluation on the fracture properties of alkali-activated slag/fly ash ultra-high-performance concrete

Although traditional ultra-high-performance concrete (UHPC) exhibits excellent mechanical and durability properties, it consumes substantial amounts of cement. Consequently, there is an urgent need to develop low-carbon and environmentally friendly alkali-activated ultra-high-performance concrete (AA-UHPC). However, the presence of initial defects and pronounced brittleness exacerbates the cracking risk. This study aimed to quantitatively evaluate the fracture properties of AA-UHPC. Through three-point bending tests conducted on 155 notched AA-UHPC beams with varying fibre volume fractions, heights, and notch lengths, the fracture mechanism of AA-UHPC was comprehensively elucidated. Subsequently, the characteristic meso-structure parameter ( C ch ) and two discrete coefficients ( β and C ) were introduced to characterise the material’s heterogeneity and discontinuity, respectively. C ch proved to be the average fibre spacing values on the fracture surfaces of AA-UHPC specimens and was determined using image analysis. Using the experimentally measured maximum fracture load ( F max ), the size-independent tensile strength ( f t ) and fracture toughness ( K IC ) for AA-UHPC were obtained based on the boundary effect model. Normality analysis was employed to determine the 95% confidence intervals for f t and K IC of AA-UHPC with varying fibre volume fractions. Parametric sensitivity analysis of C ch , β and C verified the stability of the f t and K IC predictions. Moreover, as the fibre volume fraction increased from 1% to 1.5%, f t and K IC increased by 30.4% and 13.0%, respectively; and as it increased from 1.5% to 2%, f t and K IC increased by 28.4% and 9.1%, respectively. The fracture resistance of AA-UHPC was comparable to that of traditional UHPC with the same strength grade.

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Publication Details

Journal
Construction and Building Materials
Published
2026-09-15
DOI
https://doi.org/10.1016/j.conbuildmat.2026.148127
Primary Topic
Concrete and Cement Materials Research
Type
article
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Evaluation on the fracture properties of alkali-activated slag/fly ash ultra-high-performance concrete

Zhongke Sun, Zhenhua Ren, Shutong Yang, Hongxiang Ge
Construction and Building Materials
Concrete and Cement Materials Research
article

Evaluation on the fracture properties of alkali-activated slag/fly ash ultra-high-performance concrete

Zhongke Sun, Zhenhua Ren, Shutong Yang, Hongxiang Ge
article en

Abstract

Although traditional ultra-high-performance concrete (UHPC) exhibits excellent mechanical and durability properties, it consumes substantial amounts of cement. Consequently, there is an urgent need to develop low-carbon and environmentally friendly alkali-activated ultra-high-performance concrete (AA-UHPC). However, the presence of initial defects and pronounced brittleness exacerbates the cracking risk. This study aimed to quantitatively evaluate the fracture properties of AA-UHPC. Through three-point bending tests conducted on 155 notched AA-UHPC beams with varying fibre volume fractions, heights, and notch lengths, the fracture mechanism of AA-UHPC was comprehensively elucidated. Subsequently, the characteristic meso-structure parameter ( C ch ) and two discrete coefficients ( β and C ) were introduced to characterise the material’s heterogeneity and discontinuity, respectively. C ch proved to be the average fibre spacing values on the fracture surfaces of AA-UHPC specimens and was determined using image analysis. Using the experimentally measured maximum fracture load ( F max ), the size-independent tensile strength ( f t ) and fracture toughness ( K IC ) for AA-UHPC were obtained based on the boundary effect model. Normality analysis was employed to determine the 95% confidence intervals for f t and K IC of AA-UHPC with varying fibre volume fractions. Parametric sensitivity analysis of C ch , β and C verified the stability of the f t and K IC predictions. Moreover, as the fibre volume fraction increased from 1% to 1.5%, f t and K IC increased by 30.4% and 13.0%, respectively; and as it increased from 1.5% to 2%, f t and K IC increased by 28.4% and 9.1%, respectively. The fracture resistance of AA-UHPC was comparable to that of traditional UHPC with the same strength grade.

Construction and Building MaterialsVol. 543
The University of Western Australia (AU), Ocean University of China (CN)
Life in Land
Openalex Percentile: Top 16%
Concrete and Cement Materials Research
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Evaluation on the fracture properties of alkali-activated slag/fly ash ultra-high-performance concrete — Zhongke Sun, Zhenhua Ren, et al. · Construction and Building Materials (2026) | TGRS Research Map | TGRS