Pore Structure Characteristics and Strength Variation of Red Sandstone under Freeze–Thaw Cycles
Abstract
:1. Introduction
2. Test Overview
2.1. Samples of Red Sandstone
2.2. Test Instruments
2.3. Test Design
3. Analysis of Experimental Results
3.1. Mercury Injection Test Results
3.1.1. Pore Volume Versus Pore Diameter Curves
3.1.2. Pore Volume Distribution of Red Sandstone
3.1.3. Pore Size Distribution
3.1.4. Porosity of Red Sandstone
3.2. Uniaxial Compression Test of Red Sandstone
3.2.1. Uniaxial Compressive Strength
3.2.2. Failure Modes
4. Strength Prediction Model of Red Sandstone
5. Conclusions
- (1)
- With the increase of freeze–thaw cycles, the total pore volume of red sandstone increases continuously, the continuity of pore size distribution curves increases, macropores show centralized distribution, and the freeze–thaw damage accumulates gradually. Porosity of samples after 10, 30, 70 and 100 freeze–thaw cycles is 1.14 times, 1.17 times, 1.28 times and 1.44 times of that of 0 cycle, and porosity increases obviously.
- (2)
- With the increase of freeze–thaw cycles, cohesion among mineral particles of red sandstone decreases, weak surfaces of cementation mineral particles deteriorate, the porosity increases obviously, the uniaxial compressive strength of samples after 10, 30, 70 and 100 freeze–thaw cycles is 0.68 times, 0.53 times, 0.26 times and 0.17 times of that of 0 cycle, respectively, the uniaxial compressive strength of samples decreases gradually, the failure modes change from the failure surface penetrating along the axial direction to the horizontal and longitudinal failure at the same time, and the transverse failure severity of red sandstone increases.
- (3)
- The change of porosity has a great influence on the uniaxial compressive strength of red sandstone. Taken the change of porosity as a parameter, the exponential relationship between the strength and the change of porosity in red sandstone is established. Through the regression analysis of test data, the strength prediction model of red sandstone after freeze–thaw cycles is modified.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Freeze–Thaw Cycles | Volume of Different-Sized Pores (cm3/g) | Total Pore Volume (cm3/g) | |||
---|---|---|---|---|---|
Micropores | Transitional-Pores | Mesopores | Macropores | ||
0 cycle (No Freeze–thaw) | 0.00071 | 0.00469 | 0.01406 | 0.02963 | 0.04909 |
10 cycles | 0.00082 | 0.00580 | 0.01157 | 0.03545 | 0.05364 |
30 cycles | 0.00015 | 0.00401 | 0.00896 | 0.04059 | 0.05371 |
70 cycles | 0.00027 | 0.00643 | 0.00905 | 0.04231 | 0.05806 |
100 cycles | 0.00043 | 0.00287 | 0.01074 | 0.05426 | 0.06830 |
Freeze–Thaw Cycles | Test Value of Porosity (%) | Average Value of Porosity (%) | ||
---|---|---|---|---|
0 cycle (No Freeze–thaw) | 11.1879 | 11.7110 | 11.9214 | 11.6068 |
10 cycles | 13.6653 | 12.8019 | 13.1707 | 13.2126 |
30 cycles | 13.0427 | 14.4541 | 13.3515 | 13.6161 |
70 cycles | 14.3066 | 15.2926 | 15.0426 | 14.8806 |
100 cycles | 17.0975 | 16.1235 | 17.0558 | 16.7589 |
Freeze–Thaw Cycles | Test Value of Uniaxial Compressive Strength (MPa) | Average Value of Uniaxial Compressive Strength (MPa) | ||
---|---|---|---|---|
0 cycle (No Freeze–thaw) | 41.082 | 41.917 | 38.271 | 40.423 |
10 cycles | 29.472 | 24.332 | 28.657 | 27.487 |
30 cycles | 23.350 | 21.515 | 19.795 | 21.553 |
70 cycles | 13.104 | 8.246 | 10.247 | 10.532 |
100 cycles | 8.283 | 5.123 | 7.150 | 6.852 |
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Lan, Y.; Gao, H.; Zhao, Y. Pore Structure Characteristics and Strength Variation of Red Sandstone under Freeze–Thaw Cycles. Materials 2022, 15, 3856. https://doi.org/10.3390/ma15113856
Lan Y, Gao H, Zhao Y. Pore Structure Characteristics and Strength Variation of Red Sandstone under Freeze–Thaw Cycles. Materials. 2022; 15(11):3856. https://doi.org/10.3390/ma15113856
Chicago/Turabian StyleLan, Yongwei, Hongmei Gao, and Yanlin Zhao. 2022. "Pore Structure Characteristics and Strength Variation of Red Sandstone under Freeze–Thaw Cycles" Materials 15, no. 11: 3856. https://doi.org/10.3390/ma15113856
APA StyleLan, Y., Gao, H., & Zhao, Y. (2022). Pore Structure Characteristics and Strength Variation of Red Sandstone under Freeze–Thaw Cycles. Materials, 15(11), 3856. https://doi.org/10.3390/ma15113856