Experimental Study on Shear Mechanism of Rock-Like Material Containing a Single Non-Persistent Rough Joint
Abstract
:1. Introduction
- The applied specimen preparation techniques of previous studies resulted in specimens containing joints which are edge notched. Thin sheets were located within a casting frame prior to adding mortar and were removed as the mortar hardened. However, in this study, a novel method is applied to create non-persistent joints surrounded by intact material;
- In previous studies, the sheets applied to make joints caused a measurable aperture (gap) between the joint walls, corresponding to the thickness of the sheets. This gap prevents the contact between the joint walls, and consequently joint friction cannot be mobilized during shear process. However, using the casting approach applied in this study, the embedded joints are closed and joint friction is mobilized from the beginning of direct shear tests;
- In most previous experimental research on the shear behavior of rock masses, smooth non-persistent rock joints were modeled and analyzed. However, the specimen preparation procedure here allows one to create non-persistent close joints with different roughness levels along different directions.
2. Experimental Procedure
2.1. Equipment and Experimental Settings
2.2. Materials
2.3. Variables and Levels
2.4. Specimen Preparation Procedure
2.4.1. Rough Joint Specimens (J Specimens)
2.4.2. Specimens Containing a Single Non-Persistent Open Joint (Br specimens)
2.4.3. Specimens Containing a Single Non-Persistent Rough Joint (J&Br specimens)
- Two cylindrical plaster specimens each of which has one rough side and one flat side are initially cast using a steel mold and a pair of silicone molds. The rough sides of the cylindrical specimens represent the upper and lower walls of a joint;
- The other side of each cylindrical specimen (flat side) is smoothed by a grinding machine;
- The rough sides of the prepared cylindrical specimens are placed on each other to make a cylindrical specimen containing an interlocked rough joint in the middle;
- To prevent the seepage of plaster mortar into the rough joint, the joint is plastered around the circumference with a very thin layer of slightly cured and sticky mortar;
- The cylinder with a sealed rough joint is then put in a hexahedron acrylic mold which is placed on a leveling table;
- The space around the jointed cylinder is filled with plaster mortar, and the sides of the cured specimen are leveled and smoothed utilizing a grinding machine.
3. Experimental Results
3.1. Case I
3.2. Case II
4. Discussion
4.1. Joint Friction Contribution
4.2. Dilation Mechanism
4.3. Cracking Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
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Material Type | UCS (MPa) | Tensile Strength (MPa) | Young’s Modulus (GPa) | Poisson’s Ratio | Basic Friction Angle (°) | Cohesion (MPa) | Internal Friction Angle (°) | Density (gr/cm3) |
---|---|---|---|---|---|---|---|---|
3DP | 15.9 | 2.4 | 6.16 | --- | 41 | --- | --- | --- |
Plaster | 34 | 3.85 | 7.08 | 0.23 | 39.3 | 7.0 | 40 | 1.86 |
Factors (Variables) | Levels | ||
---|---|---|---|
1 | 2 | 3 | |
Joint roughness | JRC = 6.6 Smooth, nearly planar | JRC = 11.7 Smooth undulating | JRC = 17.6 Rough undulating |
Rock bridge ratio (ζ)/Joint size (mm) | 0.71/80 | 0.59/95 | 0.45/110 |
Normal stress (MPa) | 1 | 1.5 | 2 |
Joint Diameter (mm) | Roughness Level | Roughness Value (Z2) | ||
---|---|---|---|---|
Generated Surface | 3DP Joint | Final Plaster Joint | ||
80 | Low (LR) | 0.268 | 0.162 | 0.163 (Converted JRC = 6.62) |
Medium (MR) | 0.390 | 0.238 | 0.235 (Converted JRC = 11.78) | |
High (HR) | 0.659 | 0.365 | 0.354 (Converted JRC = 17.56) | |
95 | Low (LR) | 0.267 | 0.161 | 0.163 (Converted JRC = 6.62) |
Medium (MR) | 0.460 | 0.238 | 0.234 (Converted JRC = 11.72) | |
High (HR) | 0.675 | 0.364 | 0.356 (Converted JRC = 17.64) | |
110 | Low (LR) | 0.267 | 0.161 | 0.163 (Converted JRC = 6.62) |
Medium (MR) | 0.435 | 0.239 | 0.232 (Converted JRC = 11.6) | |
High (HR) | 0.693 | 0.364 | 0.358 (Converted JRC = 17.71) |
Joint Diameter (mm) | Roughness Level | Shear Stiffness (MPa/mm) | Residual Shear Strength (MPa) | Cohesion (MPa) | Friction Angle (°) | |||||
---|---|---|---|---|---|---|---|---|---|---|
1 | 1.5 | 2 | 1 | 1.5 | 2 | |||||
80 | LR | 7.09 | 11.47 | 15.5 | 1.59 | 1.74 | 2.21 | 1.98 | 47.1 | |
MR | 14.83 | 9.42 | 7.69 | 1.67 | 1.85 | 2.17 | 2.96 | 37.9 | ||
HR | 16.11 | 12.8 | 13.62 | 1.56 | 1.99 | 2.1 | 2.58 | 46.7 | ||
95 | LR | 25.19 | 24.24 | 7.05 | 1.44 | 1.75 | 2.39 | 1.98 | 38.9 | |
MR | 8.57 | 13.21 | 10.8 | 1.51 | 1.8 | 2.4 | 1.3 | 50.7 | ||
HR | 12.16 | 10.75 | 15.07 | 1.7 | 2.22 | 2.67 | 1.75 | 47.3 | ||
110 | LR | 7.66 | 6.56 | 8.97 | 1.43 | 1.75 | 2.16 | 1.57 | 25.8 | |
MR | 15.48 | 9.5 | 12.44 | 1.52 | 1.84 | 2.36 | 0.76 | 41.7 | ||
HR | 8.51 | 12.7 | 8.44 | 1.72 | 2 | 2.68 | 1.95 | 20.0 |
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Fereshtenejad, S.; Kim, J.; Song, J.-J. Experimental Study on Shear Mechanism of Rock-Like Material Containing a Single Non-Persistent Rough Joint. Energies 2021, 14, 987. https://doi.org/10.3390/en14040987
Fereshtenejad S, Kim J, Song J-J. Experimental Study on Shear Mechanism of Rock-Like Material Containing a Single Non-Persistent Rough Joint. Energies. 2021; 14(4):987. https://doi.org/10.3390/en14040987
Chicago/Turabian StyleFereshtenejad, Sayedalireza, Jineon Kim, and Jae-Joon Song. 2021. "Experimental Study on Shear Mechanism of Rock-Like Material Containing a Single Non-Persistent Rough Joint" Energies 14, no. 4: 987. https://doi.org/10.3390/en14040987
APA StyleFereshtenejad, S., Kim, J., & Song, J. -J. (2021). Experimental Study on Shear Mechanism of Rock-Like Material Containing a Single Non-Persistent Rough Joint. Energies, 14(4), 987. https://doi.org/10.3390/en14040987