Effect of Chemical Corrosion on Rock Fracture Behavior in Coastal Deep Mines: Insights from Mechanical and Acoustic Characteristics
Abstract
:1. Introduction
2. Materials and Methods
2.1. Specimen Preparation
2.2. Test Methods
- (1)
- The specimen underwent preloading at a rate of 0.05 kN/s, with pre-pressure set at 0.5 MPa to ensure complete contact between the testing machine’s loading end and the specimen.
- (2)
- Following preloading, stress control was used to apply confining pressure at a loading rate of 0.1 MPa/s. Axial pressure was imposed at a loading rate of 0.25 MPa/s upon reaching the preset confining pressure.
- (3)
- Once the yield point was reached, the control mode transitioned from stress control to radial displacement control, with a control rate of 0.015 mm/min.
- (4)
- The loading process was halted upon specimen damage to ensure compliance with quasi-static loading conditions.
3. Mechanical Parameter Analysis
3.1. Triaxial Compressive Strength and Elastic Modulus
3.2. Cohesion and Internal Friction Angle
3.3. Stress Threshold for Cracking and Damage
3.4. Fracture Mode Analysis
4. Analysis of Acoustic Characteristics
4.1. Time Domain Characteristics of AE Counts
4.2. AE Frequency Domain Characteristics
4.3. AE b-Value
5. Discussion
5.1. Effect of Confining Pressure on Chemical Damage
5.2. Effect of Confining Pressure on Brittle–Ductile Transition
5.3. Mineralogical Analysis
6. Conclusions
- (1)
- Chemical corrosion significantly weakens the compressive strength of the granite specimens under unconfined conditions, although this weakening effect is mitigated under confining pressure. After reaching the TCS, the uncorroded and alkali-corroded specimens exhibit strain-softening behavior, while the acid-corroded specimens exhibit sudden brittle failure.
- (2)
- The elastic modulus of the corroded specimens undergoes a varying degree of degradation under unconfined compression, whereas this difference is reduced under confining pressure. Under the effect of chemical corrosion, the cohesion of the granite specimens decreases, the internal friction angle increases, and the cohesion exhibits a higher sensitivity.
- (3)
- Chemical corrosion degrades the cracking stress threshold to a greater extent and has a lesser effect on the damage stress threshold, making the granite specimens more prone to crack propagation; the confining pressure can mitigate this deterioration to some extent.
- (4)
- Compared to uncorroded and alkali-corroded specimens, acid-corroded specimens show fewer accumulative AE counts and frequency signals and lower peak frequency densities and are more susceptible to sudden brittle failure. The fluctuations in AE b-values under confining pressure are less pronounced than those under unconfined compression, and the rock fracture process is more concentrated.
- (5)
- Under unconfined compression, acid corrosion has a more significant degradation effect on the strength of the specimen than alkali corrosion, while the degradation of alkali corrosion becomes more prominent under confining pressure. The influence of confining pressure on the brittle–ductile transition has a characteristic of being strong first and then weak, and the ductility of alkali-corroded specimens is highest, followed by those of acid-corroded and uncorroded specimens.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
AdB | amplitude of acoustic emission |
average value of data | |
b | b-value of acoustic emission |
c | cohesion |
CV | coefficient of variation |
D | chemical damage variable |
DCH | D for acid-corroded specimen |
DCN | D for alkali-corroded specimen |
e | natural constant |
E | elastic modulus |
EN | E of uncorroded specimen |
ECH | E of acid-corroded specimen |
ECN | E of alkali-corroded specimen |
F | ductility factor |
FN | F of uncorroded specimen |
FCH | F of acid-corroded specimen |
FCN | F of alkali-corroded specimen |
M | magnitude |
average magnitude | |
Mmin | minimum magnitude |
N | amount of data |
S | standard deviation of data |
TCS | triaxial compressive strength |
TCSN | TCS of uncorroded specimen |
TCSCH | TCS of acid-corroded specimen |
TCSCN | TCS of alkali-corroded specimen |
TCScor | TCS of corroded specimen under the same confining pressure |
TCSuncor | TCS of uncorroded specimen under the same confining pressure |
xi | i-th data |
φ | internal friction angle |
σ1 | axial stress |
σ3 | lateral stress |
σc | peak stress |
σcd | crack damage stress |
σci | crack initiation stress |
εc | peak strain |
εcd | yield strain |
εV | volumetric strain |
εax | axial strain |
εlat | lateral strain |
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Type | σ3 (MPa) | TCS (MPa) | σcd (MPa) | σci (MPa) | E (GPa) | c (MPa) | φ (°) |
---|---|---|---|---|---|---|---|
Uncorroded | 0 | 235.48 | 181.43 | 104.41 | 58.86 | 37.27 | 56.06 |
5 | 301.19 | 207.40 | 120.73 | 60.80 | |||
10 | 363.10 | 233.95 | 133.55 | 63.62 | |||
15 | 408.29 | 257.71 | 147.14 | 62.08 | |||
20 | 450.44 | 282.64 | 156.96 | 64.99 | |||
Acid-corroded | 0 | 205.85 | 157.18 | 90.82 | 54.03 | 32.00 | 57.82 |
5 | 293.62 | 191.08 | 102.33 | 60.94 | |||
10 | 354.48 | 225.13 | 120.52 | 61.86 | |||
15 | 406.28 | 256.86 | 138.44 | 63.34 | |||
20 | 450.02 | 279.09 | 152.66 | 63.98 | |||
Alkali-corroded | 0 | 218.42 | 168.03 | 96.74 | 56.84 | 34.75 | 56.35 |
5 | 292.35 | 197.61 | 109.19 | 61.54 | |||
10 | 349.07 | 224.56 | 123.18 | 62.13 | |||
15 | 396.51 | 256.63 | 140.75 | 63.33 | |||
20 | 439.81 | 267.33 | 149.80 | 65.08 |
Type | Confining Pressure σ3 (MPa) | ||||
---|---|---|---|---|---|
0 | 5 | 10 | 15 | 20 | |
Uncorroded | |||||
Acid-corroded | |||||
Alkali-corroded |
Type | Reactant | Chemical Reaction Formula |
---|---|---|
Acid-corroded | Quartz | |
Albite | ||
Microcline | ||
Anorthite | ||
Biotite | ||
Muscovite | ||
Kaolinite | ||
Alkali-corroded | Quartz | |
Albite | ||
Microcline | ||
Anorthite | ||
Biotite | ||
Muscovite | ||
Kaolinite |
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Pan, J.; Ma, Y.; Zhang, L.; Ning, Z.; Zhang, Y.; Xi, X. Effect of Chemical Corrosion on Rock Fracture Behavior in Coastal Deep Mines: Insights from Mechanical and Acoustic Characteristics. J. Mar. Sci. Eng. 2024, 12, 869. https://doi.org/10.3390/jmse12060869
Pan J, Ma Y, Zhang L, Ning Z, Zhang Y, Xi X. Effect of Chemical Corrosion on Rock Fracture Behavior in Coastal Deep Mines: Insights from Mechanical and Acoustic Characteristics. Journal of Marine Science and Engineering. 2024; 12(6):869. https://doi.org/10.3390/jmse12060869
Chicago/Turabian StylePan, Jiliang, Yichen Ma, Leiming Zhang, Zegong Ning, Ying Zhang, and Xun Xi. 2024. "Effect of Chemical Corrosion on Rock Fracture Behavior in Coastal Deep Mines: Insights from Mechanical and Acoustic Characteristics" Journal of Marine Science and Engineering 12, no. 6: 869. https://doi.org/10.3390/jmse12060869
APA StylePan, J., Ma, Y., Zhang, L., Ning, Z., Zhang, Y., & Xi, X. (2024). Effect of Chemical Corrosion on Rock Fracture Behavior in Coastal Deep Mines: Insights from Mechanical and Acoustic Characteristics. Journal of Marine Science and Engineering, 12(6), 869. https://doi.org/10.3390/jmse12060869