Thermo-mechanical behavior and microcrack evolution of vein-bearing granite simulated with a moment-tensor-enhanced 3D TM-GBM

Understanding the thermo-mechanical behavior and damage mechanisms of vein-bearing granite is essential for high-temperature underground engineering. In this work, a moment-tensor-enhanced three-dimensional thermo-mechanical grain-based model (3D TM-GBM) was developed in PFC3D to characterize the mechanical response and microcrack evolution of vein-bearing granite. The model explicitly reproduces feldspar, quartz, mica grains, quartz veins and vein-matrix interfaces. Linear parallel-bond and smooth-joint models were used for intragranular contact and mineral boundaries and vein-matrix interfaces, respectively. Mineral-specific thermal properties and interparticle thermal pipes were incorporated to simulate heterogeneous heat transfer and thermally induced deformation. On this basis, a twelve-category scheme classified tensile and shear fractures across different intragranular and intergranular contacts. Additionally, the moment-tensor method was used to identify tensile, shear, and press-shear AE source mechanisms. The proposed model was calibrated and validated against laboratory stress-strain responses, peak strength, mineral composition, and fracture characteristics. Subsequently, the effects of thermal-treatment temperature and vein inclination on the thermo-mechanical damage evolution of vein-bearing granite were investigated using the 3D TM-GBM model. Results show that thermal-expansion mismatch and interfacial sliding jointly govern crack localization, force-chain reorganization, and strength degradation. This work provides an effective numerical approach for investigating mineral-scale thermo-mechanical damage in heterogeneous vein-bearing rocks.

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Publication Details

Journal
Engineering Analysis with Boundary Elements
Published
2026-09-30
DOI
https://doi.org/10.1016/j.enganabound.2026.107053
Primary Topic
Rock Mechanics and Modeling
Type
article
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Thermo-mechanical behavior and microcrack evolution of vein-bearing granite simulated with a moment-tensor-enhanced 3D TM-GBM

Quansheng Liu, Yuqi Wang, Qingcheng Liu, Bin Liu et al.
Engineering Analysis with Boundary Elements
Rock Mechanics and Modeling
article

Thermo-mechanical behavior and microcrack evolution of vein-bearing granite simulated with a moment-tensor-enhanced 3D TM-GBM

Quansheng Liu, Yuqi Wang, Qingcheng Liu, Bin Liu, Xuewei Liu
article en

Abstract

Understanding the thermo-mechanical behavior and damage mechanisms of vein-bearing granite is essential for high-temperature underground engineering. In this work, a moment-tensor-enhanced three-dimensional thermo-mechanical grain-based model (3D TM-GBM) was developed in PFC3D to characterize the mechanical response and microcrack evolution of vein-bearing granite. The model explicitly reproduces feldspar, quartz, mica grains, quartz veins and vein-matrix interfaces. Linear parallel-bond and smooth-joint models were used for intragranular contact and mineral boundaries and vein-matrix interfaces, respectively. Mineral-specific thermal properties and interparticle thermal pipes were incorporated to simulate heterogeneous heat transfer and thermally induced deformation. On this basis, a twelve-category scheme classified tensile and shear fractures across different intragranular and intergranular contacts. Additionally, the moment-tensor method was used to identify tensile, shear, and press-shear AE source mechanisms. The proposed model was calibrated and validated against laboratory stress-strain responses, peak strength, mineral composition, and fracture characteristics. Subsequently, the effects of thermal-treatment temperature and vein inclination on the thermo-mechanical damage evolution of vein-bearing granite were investigated using the 3D TM-GBM model. Results show that thermal-expansion mismatch and interfacial sliding jointly govern crack localization, force-chain reorganization, and strength degradation. This work provides an effective numerical approach for investigating mineral-scale thermo-mechanical damage in heterogeneous vein-bearing rocks.

Engineering Analysis with Boundary ElementsVol. 193
Chinese Academy of Sciences (CN), Institute of Rock and Soil Mechanics (CN), University of Chinese Academy of Sciences (CN), State Key Laboratory of Geomechanics and Geotechnical Engineering (CN)
Sustainable cities and communities
Openalex Percentile: Top 21%
Rock Mechanics and Modeling
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