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Mingming He

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Aug 2026

Shear response and spatial evolution of roughness degradation in rock fracture surfaces with heterogeneously distributed multi-angle asperities

The simplified characterization of rough rock fracture morphology is fundamental to understanding shear mechanical behavior. This study presents a method for constructing fracture surfaces by integrating profiles with varied inclined dentate asperities. The resulting five surfaces (D_1 to D_5) were quantitatively validated using the roughness index θ * max /(C+1) , demonstrating distinct roughness gradients. Utilizing three-dimensional (3D) printing technology, these fracture types were cast into mortar specimens for direct shear testing under varying normal loads. Experimental results allowed for a detailed analysis of shear stress, normal displacement, and their correlation with initial roughness and normal stress. Post-test 3D scanning revealed significant spatial variations in macroscopic surface damage. Investigation into the reduction and residual values of surface roughness indicates that degradation is closely linked to initial topography. Specifically, the roughest regions sustain the most significant damage and contribute most substantially to shear resistance. This research offers a feasible and novel approach to evaluating the mechanical properties of rock fractures.

Jiu-yang Huan, Mingming He, Mengdie Hu et al. · 0 citations
Jul 2026

Rock Brittle–Ductile Transition Under Coupled Confining Pressure and Strain Rate Effects: A Model Based on Peak and Residual Strengths

The interactive influence of disturbances and ground stress cause the failure behavior of deep rocks to exhibit a dynamic adjustment of brittleness and ductility. Excessive brittle behavior results in wellbore instability and damage to the surrounding formations in petroleum engineering. Peak and residual strength criteria applicable to such environments are proposed to establish a theoretical foundation for drilling safety assessment. The strength criterion is according to the CS (CowperSymonds) and the slip-crack model. A brittleductile transition (BDT) index IB is established from the relation between residual and peak strengths. A large amount of experimental data within the ranges of 10 -5 –10 4 s -1 strain rate (SR) and 0–230 MPa confining pressure (CP) has verified the reliability of this strength criterion. The correlation coefficients are close to 0.99 for peak and residual strength fittings. The errors of the BDT index are within 10% for all rock types except coal. The results indicated that rock strength increases with both CP and SR. However, the enhancing influence of SR and CP exhibit mutual suppression under coupled conditions. This phenomenon ultimately manifests as a variation in rock brittleness and ductility. Higher SRs correspond to larger values of m′ and n whereas λ′ decreases. The rates of change of the three parameters under high SR conditions are much greater than those at other SRs. The variation trends of these parameters provide a macroscopic physical explanation for the BDT. This theoretical framework has significant value for safety and risk assessment in drilling engineering under complex geological conditions.

Mingchen Ding, Mingming He, Jianping Zuo et al. · 0 citations