Grouting-Induced Spatial Heterogeneity and Hydro-Mechanical Response of Fractured Rock Masses: Insights from Experimental Investigation

Grouted rock masses are rarely homogeneous due to heterogeneous grout transport, yet its effect on hydro-mechanical properties is unclear. This study conducted a single chamber-scale grouting experiment on fractured rock, from which 36 cylindrical specimens were obtained using a spatially distributed sampling scheme (vertical position, radial distance, and azimuth), followed by stress–permeability coupling tests. The results show a progressive transition from high-strength–low-permeability near the injection point (lower region) to low-strength–high-permeability in the upper far-field, with azimuthal variations. Peak strength decreased from 38.39 MPa to 23.69 MPa, while initial permeability increased from 0.20 × 10−17 to 0.58 × 10−17 m2. Peak strength shows a nonlinear negative correlation with initial permeability, but strength–permeability relationships vary across regions; similar strength levels can have different permeability, indicating that bearing capacity and water-blocking are governed by cemented skeleton and residual flow channels jointly. The pressure-response characteristics and SEM observations suggest that nonuniform grout transport and filling, local clogging, and possible flow-path redistribution contributed to the observed spatial heterogeneity. Continuous permeability monitoring of four selected specimens showed that the lower/near-injection specimen exhibited limited pre-peak permeability variation and slower post-peak softening, whereas the upper and far-field specimens showed greater permeability fluctuations and more pronounced softening. The results provide a spatial basis for identifying weakly reinforced regions and evaluating grouting performance in fractured water-bearing rock masses.

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Journal
Applied Sciences
Published
2026-09-28
DOI
https://doi.org/10.3390/app16199623
Primary Topic
Grouting, Rheology, and Soil Mechanics
Type
article
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article

Grouting-Induced Spatial Heterogeneity and Hydro-Mechanical Response of Fractured Rock Masses: Insights from Experimental Investigation

Gang Ma, Xuefeng Gao, Haitao Yu, Wenxin Li et al.
Applied Sciences
Grouting, Rheology, and Soil Mechanics
article

Grouting-Induced Spatial Heterogeneity and Hydro-Mechanical Response of Fractured Rock Masses: Insights from Experimental Investigation

Gang Ma, Xuefeng Gao, Haitao Yu, Wenxin Li, Jingdao Fan, Qiang Li, Peng Li, Wentao Hou, Dan Ma, Yuxin Kang
article en

Abstract

Grouted rock masses are rarely homogeneous due to heterogeneous grout transport, yet its effect on hydro-mechanical properties is unclear. This study conducted a single chamber-scale grouting experiment on fractured rock, from which 36 cylindrical specimens were obtained using a spatially distributed sampling scheme (vertical position, radial distance, and azimuth), followed by stress–permeability coupling tests. The results show a progressive transition from high-strength–low-permeability near the injection point (lower region) to low-strength–high-permeability in the upper far-field, with azimuthal variations. Peak strength decreased from 38.39 MPa to 23.69 MPa, while initial permeability increased from 0.20 × 10−17 to 0.58 × 10−17 m2. Peak strength shows a nonlinear negative correlation with initial permeability, but strength–permeability relationships vary across regions; similar strength levels can have different permeability, indicating that bearing capacity and water-blocking are governed by cemented skeleton and residual flow channels jointly. The pressure-response characteristics and SEM observations suggest that nonuniform grout transport and filling, local clogging, and possible flow-path redistribution contributed to the observed spatial heterogeneity. Continuous permeability monitoring of four selected specimens showed that the lower/near-injection specimen exhibited limited pre-peak permeability variation and slower post-peak softening, whereas the upper and far-field specimens showed greater permeability fluctuations and more pronounced softening. The results provide a spatial basis for identifying weakly reinforced regions and evaluating grouting performance in fractured water-bearing rock masses.

Applied SciencesVol. 16(19)
China University of Mining and Technology (CN), Henan Polytechnic University (CN)
Clean water and sanitation
Openalex Percentile: Top 17%
Grouting, Rheology, and Soil Mechanics
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