A Study on the Dynamic Strength Deterioration Mechanism of Frozen Red Sandstone at Low Temperatures
Abstract
:1. Introduction
2. Dynamic Impact Test of Frozen Red Sandstone
2.1. Specimen Preparation and Corresponding Parameters
2.2. Experimental Scheme
3. Temperature Effect on Mechanical Properties of Red Sandstone under High Strain Rate
3.1. Analysis of Dynamic Mechanical Properties
3.2. Influence of Negative Temperature on Damage Variables
3.3. Macroscopic Failure Pattern of Red Sandstone at Negative Temperatures
4. Analysis of Mesoscopic Fracture Morphology
5. Discussion
5.1. Influence of Water-Ice Phase Transformation on Dynamic Strength of Red Sandstone
5.2. Fracture Mode of Frozen Red Sandstone
6. Conclusions
- (1)
- A change in negative temperature significantly affects the dynamic mechanical properties of red sandstone, which is equivalent to applying precompression stress to red sandstone. Although the rock tends to be brittle as a whole, its ability to resist tensile stress is enhanced. Therefore, within the range from 25 °C to −30 °C, its dynamic compressive strength increases gradually with a decrease in temperature.
- (2)
- Lower negative temperatures lead to “frostbite” and deterioration of dynamic mechanical properties of red sandstone under high strain rate loading. The test results show that the dynamic compressive strength of red sandstone decreases sharply after −30 °C, which is different from the results obtained in static or quasi-static tests at −30 °C.
- (3)
- At high strain rates, the fracture degree of red sandstone gradually intensifies with a decrease in negative temperature (from −5 to −40 °C), and the failure mode of the stone gradually transitions from the initial negative temperature tension failure to the slip shear failure at a lower negative temperature, which is consistent with the transformation of the internal structural fracture mode at the mesoscopic level.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Rock Type | Velocity of Longitudinal Wave m·s−1 | Dry Density kg·m−3 | Saturated Density kg·m−3 | Saturation Rate % | |
---|---|---|---|---|---|
Dry | Saturated | ||||
Red sandstone | 2780 | 3651 | 2292 | 2371 | 3.46 |
Serial Number | T °C | U J·m−3 | wd J·m−3 | d | |
---|---|---|---|---|---|
Experimental Value | Average Value | ||||
1 | 25 | 2,026,020 | 798,014.6 | 0.39 | 0.42 |
2 | 1,824,890 | 1,022,309.0 | 0.56 | ||
3 | 2,170,870 | 669,018.2 | 0.31 | ||
4 | −5 | 2,308,220 | 635,319.7 | 0.28 | 0.30 |
5 | 2,309,290 | 599,024.3 | 0.26 | ||
6 | 2,036,210 | 744,266.1 | 0.37 | ||
7 | −10 | 1,843,130 | 774,945.0 | 0.42 | 0.40 |
8 | 1,829,330 | 597,333.3 | 0.33 | ||
9 | 1,554,370 | 698,912.0 | 0.45 | ||
10 | −20 | 1,803,090 | 945,189.0 | 0.52 | 0.43 |
11 | 2,121,560 | 775,307.4 | 0.37 | ||
12 | 2,225,180 | 907,565.0 | 0.41 | ||
13 | −30 | 2,046,070 | 904,847.4 | 0.44 | 0.47 |
14 | 2,196,160 | 810,938.4 | 0.37 | ||
15 | 1,944,590 | 1,167,188.0 | 0.60 | ||
16 | −40 | 2,000,980 | 941,746.6 | 0.47 | 0.55 |
17 | 1,754,530 | 1,049,546.0 | 0.60 | ||
18 | 1,658,340 | 970,915.8 | 0.59 |
T | −5 °C | −10~−30 °C | −40 °C |
---|---|---|---|
Characteristics of macroscopic failure | Damage mode is given priority with the tension damage. The shape of broken body is mainly the columnar splitting structure. | The failure mode changes from tensile failure to shear failure. The number of columnar splitting structures decrease, while the number of lamellar spallation structures increase. | Shear failure is the main failure mode, and the shape of the broken body is mainly the lamellar and conical structure. |
Change law of dynamic strength | Gradually Increasing | Dramatically reducing | |
Cause analysis | The water-ice phase transformation occurs, the bond between mineral particles increases, the rock integrity is enhanced, and the dynamic strength is improved. Sandstone with enhanced brittleness and integrity is more prone to tensile failure along the loading direction under impact load. | With a decrease in negative temperature, the red sandstone shrinks as a whole, and the interlacing between mineral particles and solid ice becomes closer, and the dynamic mechanical strength increases significantly. The resistance of rock to radial contraction is further reduced, and the rock fracture is lamellar structure under the action of reverse tensile wave. | The shrinkage rate and amplitude of each component material in sandstone are quite different when it is cooled. A large number of cracks are formed at the contact of the components, and the plastic deformation ability at the crack tip is poor. Low stress brittle failure occurs easily under negative temperature and high strain rate loading, and the strength drops sharply. |
T °C | Fracture Mode | Dynamic Strength MPa | Dissipated Energy WL J |
---|---|---|---|
25 | Cement fracture, intergranular fracture | 98.51 | 147.63 |
−5 | Cement fracture | 102.47 | 109.10 |
−10 | Cement fracture | 113.16 | 131.63 |
−20 | Cement fracture | 121.01 | 145.05 |
−30 | Cement fracture, intergranular fracture | 122.12 | 158.78 |
−40 | Cement fracture, transgranular fracture | 86.23 | 169.13 |
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Yang, Y.; Zhang, N.; Wang, J. A Study on the Dynamic Strength Deterioration Mechanism of Frozen Red Sandstone at Low Temperatures. Minerals 2021, 11, 1300. https://doi.org/10.3390/min11121300
Yang Y, Zhang N, Wang J. A Study on the Dynamic Strength Deterioration Mechanism of Frozen Red Sandstone at Low Temperatures. Minerals. 2021; 11(12):1300. https://doi.org/10.3390/min11121300
Chicago/Turabian StyleYang, Yang, Niannian Zhang, and Jianguo Wang. 2021. "A Study on the Dynamic Strength Deterioration Mechanism of Frozen Red Sandstone at Low Temperatures" Minerals 11, no. 12: 1300. https://doi.org/10.3390/min11121300
APA StyleYang, Y., Zhang, N., & Wang, J. (2021). A Study on the Dynamic Strength Deterioration Mechanism of Frozen Red Sandstone at Low Temperatures. Minerals, 11(12), 1300. https://doi.org/10.3390/min11121300