@article{WANG2026, 
author = {Nan-yun WANG and Xin-rong LIU and Zu-liang ZHONG and Kai-xin ZHU},
title = {Mechanical properties and fractal damage constitutive model of hole-bearing limestone under conventional compression},
year = {2026},
journal = {Rock and Soil Mechanics},
volume = {47},
number = {7},
pages = {2367-2379},
keywords = {hole-bearing limestone, fractal dimension, crack damage stress, energy characteristic, constitutive model},
url = {https://www.sciopen.com/article/10.26599/RSM.2025.94300365},
doi = {10.26599/RSM.2025.94300365},
abstract = {The development of underground dissolution leads to the formation of numerous cavities in limestone, thereby affecting the stability of karst mountain. Conventional compression tests were performed on rocks with different hole number and diameters to investigate the peak strength, crack damage behavior, energy characteristics and failure modes under different confining pressures (σ3) and dissolution rates (η). The results indicate that the uniaxial compressive strength and crack damage stress (σcd) of hole-bearing limestone are independent of the dissolution rate (η). Under triaxial compression, the peak strength of hole-bearing limestone can be described by a linear Mohr-Coulomb criterion. The cohesion (c) and crack damage ratio (σcd/σp) increase with the increase of dissolution rate (η), with the maximum increases being 14.04% and 14.1%, respectively. The peak strength (σp), frictional angle (ϕ), and energy storage coefficient (Ke) decrease with the increase of dissolution rate (η), with the maximum decreases being 14.11%, 12.86%, and 9.72%, respectively. At the same dissolution rate, the pore diameter (d) exerts a more significant influence on the variations of various parameters in hole-bearing limestone than the pore number (n). σp, σcd, σcd/σp, and Ke all increase with increasing confining pressure (σ3). The failure mode of hole-bearing limestone is not affected by hole number, and exhibits a conical shear failure without penetrating through the specimen when the hole diameter is greater than 15mm. A fractal damage constitutive model was developed for hole-bearing limestone, and the consistency between theoretical predictions and experimental results substantiates the validity of the proposed model. The concluding remarks can provide a basis for further research on the hole-bearing limestone and karst landslides.}
}