Study on the Effects of Different Water Content Rates on the Strength and Brittle Plasticity of Limestone
Abstract
:1. Introduction
2. Specimen Preparation and Test Methods
2.1. Specimen Preparation
2.2. Test Methods
3. Uniaxial Compression Test Results Analysis
3.1. First Stage: The Fracture Compaction Stage (1)
3.2. Second Stage: Stable Development of Elastic Deformation to Microelastic Fractures (2)
3.3. Third Stage: The Progressive Rupture Stage (3)
3.4. Fourth Stage: The Post-Rupture Stage (4)
3.5. Fifth Stage: The Residual Stress Stage (5)
4. Prototype Analysis of Specimen Failure
5. Analysis of Energy and Brittleness of Plasticity under Uniaxial Compression
6. Conclusions
- With an increase in the limestone water content rate, the pores and micro-cracks inside the limestone are filled with water, which increases the stress required in the compaction stage of the limestone. At the same time, with an increase in the water content rate of the limestone, the elastic modulus and uniaxial compressive strength of the limestone gradually decrease.
- With an increase in the water content rate of the limestone, the failure form is still mainly tensile failure. However, after an increase in the water content rate, the through-surface of the specimen failure gradually decreases. Then, based on the quantitative calculations, the brittleness index of the limestone will decrease with an increase in the water content rate.
- With an increase in the limestone water content rate, the upper limit of the elastic strain energy storage will decrease because the pores and micro-cracks inside the limestone become filled with water. In addition, the dissipation energy of limestone will increase with an increase in the water content rate, thereby reducing the strength of the limestone. The proportion of pre-peak deformation among the total deformation increases with an increase in the water content rate of the limestone, i.e., the molding of the limestone increases.
- This paper mainly studied the effects of the water content rate on the mechanical properties of limestone, which has certain limitations. The test results were also affected by the sample size. However, the final test results showed good regularity with a high reliability. Thus, this study could provide a reference for research on other kinds of rock hydrologic properties. In addition, since this research considered Tongzi Tunnel as its research background (based on the actual project), this work has very important practical significance. The results could provide theoretical support and guidance for the excavation of Tongzi tunnel, including the stability of the surrounding rock and maintenance during subsequent periods.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Test Piece Number | E1 | E2 | E3 | E4 | E5 | E6 | E7 | E8 | E9 | E10 |
---|---|---|---|---|---|---|---|---|---|---|
Sonics peed Km/s | 5.81 | 5.88 | 5.85 | 5.56 | 5.95 | 5.56 | 5.43 | 5.81 | 5.81 | 5.81 |
Test Piece Number | E1 | E8 | E9 | E10 |
---|---|---|---|---|
477.76 | 478.88 | 479.29 | 478.65 | |
Soaking time (d) | 0 | 1 | 1.5 | 2 |
477.76 | 479.22 | 479.79 | 479.94 | |
0.00 | 0.07 | 0.10 | 0.27 |
Test Piece Number | E1 | E8 | E9 | E10 |
---|---|---|---|---|
Elastic modulus (GPa) | 8.85 | 8.65 | 7.82 | 6.76 |
Test Piece Number | E1 | E8 | E9 | E10 |
---|---|---|---|---|
Uniaxial compression Strength MPa | 74.11 | 64.73 | 63.70 | 57.60 |
Test Piece Number | (MPa) | (%) | (MPa) | (%) | (s) |
---|---|---|---|---|---|
E1 | 74.11 | 1.04 | 7.86 | 1.38 | 1.5 |
E8 | 64.73 | 0.94 | 21.02 | 1.42 | 1.7 |
E9 | 63.70 | 1.08 | 17.23 | 1.36 | 1.4 |
E10 | 57.60 | 1.09 | 15.39 | 1.23 | 1.3 |
Test Piece Number | E1 | E8 | E9 | E10 |
---|---|---|---|---|
0.40 | 0.50 | 0.39 | 0.39 | |
0.77 | 0.64 | 0.67 | 0.65 | |
1.17 | 1.14 | 1.06 | 1.04 |
Specimen Number | Total Input Strain Energy U | Releases Elasticity Strain Energy | Dissipative Energy |
---|---|---|---|
E1 | 338.15 | 310.43 | 27.72 |
E8 | 263.49 | 242.15 | 21.24 |
E9 | 303.16 | 259.30 | 43.86 |
E10 | 313.45 | 245.32 | 68.13 |
Specimen Number | E1 | E8 | E9 | E10 |
---|---|---|---|---|
BIM value | 0.09 | 0.09 | 0.17 | 0.28 |
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Zhang, Q.; Liu, Y.; He, G.; Chen, Q.; Ou, X.; Tian, J. Study on the Effects of Different Water Content Rates on the Strength and Brittle Plasticity of Limestone. Appl. Sci. 2023, 13, 4685. https://doi.org/10.3390/app13084685
Zhang Q, Liu Y, He G, Chen Q, Ou X, Tian J. Study on the Effects of Different Water Content Rates on the Strength and Brittle Plasticity of Limestone. Applied Sciences. 2023; 13(8):4685. https://doi.org/10.3390/app13084685
Chicago/Turabian StyleZhang, Quan, Yuanming Liu, Guohua He, Qingzhi Chen, Xun Ou, and Jiao Tian. 2023. "Study on the Effects of Different Water Content Rates on the Strength and Brittle Plasticity of Limestone" Applied Sciences 13, no. 8: 4685. https://doi.org/10.3390/app13084685
APA StyleZhang, Q., Liu, Y., He, G., Chen, Q., Ou, X., & Tian, J. (2023). Study on the Effects of Different Water Content Rates on the Strength and Brittle Plasticity of Limestone. Applied Sciences, 13(8), 4685. https://doi.org/10.3390/app13084685