Experimental Study on Mechanical Properties and Failure Laws of Granite with Artificial Flaws under Coupled Static and Dynamic Loads
Abstract
:1. Introduction
2. Coupled Static and Dynamic Loading Tests
2.1. Creating the Specimens
2.2. Testing Equipment
2.3. Experimental Project
3. Results and Discussion
3.1. Test Results
3.2. Deformation Characteristics
3.3. Failure Modes
4. Conclusions
- The dynamic strength of the specimens increased first and then decreased with an increase in static pressure; in addition, the specimen reached the maximum dynamic strength when the static pressure was 10% UCS. The pre-stress played the role of compaction on the specimen and increased its ability to resist the dynamic force. However, with the increase in the pressure value, the static pressure itself caused damage to the specimen; thus, reducing the strength of the specimen. The dynamic strength decreased first and then increased with the growth of the crack inclination angle; moreover, the lowest strength appeared when the inclination angle was 45°. The angle of 45° was conducive to the generation of shear strain zones along the diagonal direction, which often led to the final failure of the specimen.
- The change in the axial compression had a significant influence on the failure mode. In terms of the specimen with 0° cracks, the specimen exhibited tensile failure in the absence of axial compression. Under uniaxial compression of 20% and 50%, the typical tensile shear failure occurred; and when the uniaxial compression was 10%, 30%, or 60%, the shear failure was predominant. The failure mode of the specimens with a 45° fracture was mainly a counter-wing shear strain developing around the end of the fractures; in addition, this shear mode became more and more obvious with the increase in the axial compression. The failure mode gradually transformed from shear–tensile failure to shear failure. The failure mode of the specimens with a 90° crack was mainly characterized by the tensile strain at the tips of the fracture. With the increase in the axial compression, the length and number of shear cracks increased; and the failure mode transformed from tensile failure to shear–tensile failure.
- The inclination angle of the double parallel cracks played a key role in the formation and development of the tensile strain zone. The tensile strain was usually generated at the end of the fractures or near the rock bridge. When the axial pressure was small, the tensile strain zone parallel to the loading direction was easily generated; moreover, when the axial pressure was large, the shear strain zone extending along the diagonal direction developed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Sample | Static Pressure/MPa | Dynamic Strength/MPa | Combined Strength/MP | Peak Strain/10−3 | Strain Rate/s−1 |
---|---|---|---|---|---|
S0-flaw 0° | 0 | 155.60 | 155.60 | 8.83 | 109.16 |
S0-flaw 45° | 132.36 | 132.36 | 5.02 | 105.55 | |
S0-flaw 90° | 141.32 | 141.32 | 6.07 | 136.89 | |
SA-flaw 0° | 10% UCS | 196.50 | 210.50 | 6.62 | 98.37 |
SA-flaw 45° | 152.72 | 166.72 | 5.70 | 135.10 | |
SA-flaw 90° | 177.50 | 191.50 | 7.01 | 96.38 | |
SB-flaw 0° | 20% UCS | 194.15 | 222.05 | 5.28 | 113.72 |
SB-flaw 45° | 132.27 | 160.17 | 5.46 | 144.60 | |
SB-flaw 90° | 159.76 | 187.66 | 5.11 | 119.33 | |
SC-flaw 0° | 30% UCS | 189.45 | 231.35 | 5.53 | 114.61 |
SC-flaw 45° | 132.68 | 174.58 | 5.37 | 154.26 | |
SC-flaw 90° | 152.70 | 194.60 | 5.01 | 143.12 | |
SD-flaw 0° | 50% UCS | 166.90 | 236.70 | 4.28 | 140.65 |
SD-flaw 45° | 90.96 | 160.76 | 3.21 | 141.67 | |
SD-flaw 90° | 133.18 | 202.98 | 4.18 | 103.60 | |
SE-flaw 0° | 60% UCS | 149.32 | 233.12 | 4.04 | 131.82 |
SE-flaw 45° | 106.25 | 190.05 | 3.57 | 162.34 | |
SE-flaw 90° | 122.97 | 206.77 | 3.41 | 144.48 |
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Li, G.; Liu, S.; Lu, R.; Ma, F.; Guo, J. Experimental Study on Mechanical Properties and Failure Laws of Granite with Artificial Flaws under Coupled Static and Dynamic Loads. Materials 2022, 15, 6105. https://doi.org/10.3390/ma15176105
Li G, Liu S, Lu R, Ma F, Guo J. Experimental Study on Mechanical Properties and Failure Laws of Granite with Artificial Flaws under Coupled Static and Dynamic Loads. Materials. 2022; 15(17):6105. https://doi.org/10.3390/ma15176105
Chicago/Turabian StyleLi, Guang, Shuaiqi Liu, Rong Lu, Fengshan Ma, and Jie Guo. 2022. "Experimental Study on Mechanical Properties and Failure Laws of Granite with Artificial Flaws under Coupled Static and Dynamic Loads" Materials 15, no. 17: 6105. https://doi.org/10.3390/ma15176105
APA StyleLi, G., Liu, S., Lu, R., Ma, F., & Guo, J. (2022). Experimental Study on Mechanical Properties and Failure Laws of Granite with Artificial Flaws under Coupled Static and Dynamic Loads. Materials, 15(17), 6105. https://doi.org/10.3390/ma15176105