Mechanical Properties and Constitutive Relationship of Cretaceous Frozen Sandstone under Low Temperature
Abstract
:1. Introduction
2. Test Plan
2.1. Sample Preparation
2.2. Test Equipment
2.3. Test Design
3. Mechanical Test Results of Cretaceous Red Sandstone
3.1. Uniaxial Compression Test of Cretaceous Red Sandstone
3.2. Triaxial Compression Test of Cretaceous Red Sandstone
3.3. Analysis of Mechanical Properties of Rock
3.3.1. Relationship between the Freezing Temperature/Confining Pressure and the Peak Intensity of Sandstone
3.3.2. Relationship between the Freezing Temperature/Confining Pressure and the Elastic Modulus of Sandstone
3.3.3. Relationship between the Freezing Temperature/Confining Pressure and Poisson’s Ratio of Sandstone
4. Constitutive Relationship
4.1. Constitutive Relationship before Yield Point
4.2. Constitutive Relationship after the Yield Point
- On the basis of the D-P strength criterion, the damage-softening constitutive model of rock is more suitable for describing the stress–strain curve of rock, especially beyond the yield point, with a high fitting degree.
- The stress before the yield point described by the constitutive relation is generally high, and it cannot be used to accurately describe the crack compaction and elastic deformation stages of Cretaceous red sandstone under 3D stress.
- Compared with the test curve under high confining pressure, the model curve is more consistent with the test stress–strain curve obtained under low confining pressure, and under the negative temperature state, the fitting degree of the model curve rises with the decrease in the temperature, which may be ascribed to the increase in the elastic modulus of rock as the temperature decreases.
4.3. Model Validation
5. Conclusions
- Triaxial compression tests were conducted on the frozen samples of weakly cemented red sandstone in the Luohe Formation of Lower Cretaceous in Lijiagou air-return shaft of Wenjiapo Mine under different confining pressures. The stress–strain curves of rock subjected to triaxial compression exhibited four phases: crack compaction, elastic deformation, yielding phase, and failure phase. Different from the deformation characteristics under confining pressure, there was no strain-softening stage behind the peak of rock under uniaxial compression, which manifested as a sudden stress drop and rock failure.
- The peak strength and the elastic modulus of rock increased with the decrease in the temperature when the confining pressure was constant and showed a linear growth trend under negative temperature conditions, but the rate of growth gradually decreased. When the test temperature was constant, as the confining pressure increased, the peak strength and the elastic modulus increased, while the Poisson’s ratio decreased.
- The TPHM was able to effectively describe the constitutive relationship of rock before the yield point. On the basis of the Lemaitre strain equivalence hypothesis, the micro-elements in the sandstone were assumed to obey Weibull distribution. According to the D-P criterion, the damage constitutive relationship of rock was established to describe the stress–strain relationship after the yield point.
- The results based on the constitutive relationship were compared with the test results. The absolute error between the two was not more than 1 MPa, and the relative error was less than 5%. This indicated that the established constitutive model was not only better able to describe the rock fracture compression and elastic stages before the yield point, but also revealed the post-peak strain softening section, verifying the applicability and rationality of the model.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Natural Moisture Content/% | Saturated Water Content/% | Dry Density/g·cm−3 | Saturation Density/g·cm−3 | Porosity/% |
---|---|---|---|---|
5.18 | 8.69 | 2.12 | 2.23 | 23.61 |
Experimental Temperature | Confining Pressure | |||
---|---|---|---|---|
0 MPa (No Confining Pressure) | 2 MPa | 4 MPa | 6 MPa | |
25 °C | W0T25 | W2T25 | W4T25 | W6T25 |
−5 °C | W0T-5 | W2T-5 | W4T-5 | W6T-5 |
−10 °C | W0T-10 | W2T-10 | W4T-10 | W6T-10 |
−15 °C | W0T-15 | W2T-15 | W4T-15 | W6T-15 |
Specimen Number | σmax/MPa | E/MPa | μ |
---|---|---|---|
W0T25 | 12.242 | 2407.36 | 0.249 |
W0T-5 | 20.689 | 2973.21 | 0.239 |
W0T-10 | 27.122 | 3728.39 | 0.230 |
W0T-15 | 31.812 | 4947.37 | 0.210 |
W2T25 | 16.827 | 3026.18 | 0.234 |
W2T-5 | 25.557 | 3802.13 | 0.226 |
W2T-10 | 33.277 | 4507.64 | 0.216 |
W2T-15 | 38.981 | 5807.88 | 0.197 |
W4T25 | 23.611 | 3713.07 | 0.222 |
W4T-5 | 31.276 | 4478.78 | 0.216 |
W4T-10 | 38.704 | 5292.02 | 0.204 |
W4T-15 | 49.109 | 6723.26 | 0.187 |
W6T25 | 32.784 | 4376.91 | 0.213 |
W6T-5 | 41.582 | 5439.73 | 0.207 |
W6T-10 | 51.706 | 6390.49 | 0.196 |
W6T-15 | 58.642 | 7507.74 | 0.180 |
Confining Pressure/MPa | Absolute Deviation /MPa | /% |
---|---|---|
2 | 0.312 | 3.28 |
4 | 0.526 | 3.82 |
6 | 0.706 | 3.68 |
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Shu, S.; Yao, Z.; Xu, Y.; Wang, C.; Hu, K. Mechanical Properties and Constitutive Relationship of Cretaceous Frozen Sandstone under Low Temperature. Appl. Sci. 2023, 13, 4504. https://doi.org/10.3390/app13074504
Shu S, Yao Z, Xu Y, Wang C, Hu K. Mechanical Properties and Constitutive Relationship of Cretaceous Frozen Sandstone under Low Temperature. Applied Sciences. 2023; 13(7):4504. https://doi.org/10.3390/app13074504
Chicago/Turabian StyleShu, Siyuan, Zhishu Yao, Yongjie Xu, Chen Wang, and Kun Hu. 2023. "Mechanical Properties and Constitutive Relationship of Cretaceous Frozen Sandstone under Low Temperature" Applied Sciences 13, no. 7: 4504. https://doi.org/10.3390/app13074504
APA StyleShu, S., Yao, Z., Xu, Y., Wang, C., & Hu, K. (2023). Mechanical Properties and Constitutive Relationship of Cretaceous Frozen Sandstone under Low Temperature. Applied Sciences, 13(7), 4504. https://doi.org/10.3390/app13074504