Elastic-Plastic Threshold and Rational Unloading Level of Rocks
Abstract
:1. Introduction
2. Mechanical Study of Siltstone Under Loading
2.1. Test Protocol
2.2. Evolution Analysis of Deformation Parameter
2.3. Evolution Analysis of Strain
2.4. Evolution Analysis of Strain Energy
3. Mechanical Analysis of Different Rocks Under Loading
3.1. Mechanical Analysis of Mudstone Under Loading
3.2. Exploration of Rational Unloading Level for Unloading Tests
4. Conclusions
- (1)
- The nominal Poisson’s ratio changes highlight a U-shaped pattern while increasing axial pressure, namely first decreasing and then increasing. In contrast, the change of elasticity modulus shows an opposite trend. At a fixed confining pressure, the critical point of change in these trends corresponds to equal or similar stress levels;
- (2)
- At the same confining pressure condition, the stress levels corresponding to the first relatively pronounced or more pronounced change in the axial pressure increment ratio of various variables (strain, nominal elastic modulus, nominal Poisson’s ratio, and energy) for the same rock are similar or equal. Differences exist among rocks due to their intrinsic attributes and characteristics;
- (3)
- The unloading stress level of siltstone rocks increases linearly as the confining pressure increases. However, the gradients of increasement are varied among rocks with different lithology due to rock’s inherent properties;
- (4)
- For studies on unloading tests of rocks under complex stress paths, the unloading level is recommended to be equal to or slightly lower than the stress level at the elastic-plastic threshold of rocks under the corresponding confining pressure.
Author Contributions
Funding
Conflicts of Interest
References
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Rock | Threshold Value of Elastic-Plastic Transformation | Researcher and References |
---|---|---|
Sandstone | 85–95% | Liu [7] |
Siltstone | 85–95% | Li [8] |
Sandstone | 70%, 80%, 90% | Liu [9] |
Marble | 60% and 80% | Zhang [10] |
Gneiss | 55–65% | Zhang [11] |
Shale | About 65% | Zhu [12] |
Marble | 50% | Liu [13] |
Marble | 60% | Cong [14,15] |
Mudstone | 80% | Deng [16] |
Marble | 70% | Chen [17,18], Zhao [20] |
Schist | 70% | Yang [19] |
Rhyolite | 80–90% | Zhong [21] |
Siltstone | 15–90% | Ji [22] |
Granite, red sandstone | 80% | Du [23] |
Granitic rock | 80% | Dai [24] |
Sandstone | 80% | Qin [25] |
Marble | 80% | Zhao [26] |
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Ji, M.; Guo, H. Elastic-Plastic Threshold and Rational Unloading Level of Rocks. Appl. Sci. 2019, 9, 3164. https://doi.org/10.3390/app9153164
Ji M, Guo H. Elastic-Plastic Threshold and Rational Unloading Level of Rocks. Applied Sciences. 2019; 9(15):3164. https://doi.org/10.3390/app9153164
Chicago/Turabian StyleJi, Ming, and Hongjun Guo. 2019. "Elastic-Plastic Threshold and Rational Unloading Level of Rocks" Applied Sciences 9, no. 15: 3164. https://doi.org/10.3390/app9153164
APA StyleJi, M., & Guo, H. (2019). Elastic-Plastic Threshold and Rational Unloading Level of Rocks. Applied Sciences, 9(15), 3164. https://doi.org/10.3390/app9153164