Mechanism of Permeability Evolution in Coral Reef Limestone Under Variable Confined Pressure Using Nuclear Magnetic Resonance Technology
Abstract
1. Introduction
2. Test Sample and Test Methods
2.1. Physical Properties of Sample
2.2. Microstructural Characteristics and Mineral Composition of the Sample
2.3. Test Apparatus
2.4. Principles of Nuclear Magnetic Resonance
2.5. Test Procedure and Program
3. Analysis of Test Results
3.1. Permeability Evolution
3.2. Evolution of Pore Distribution in Reef Limestone
3.3. Relationship Between Pore Volume Increment and Permeability
3.4. Permeability Damage Rate
3.5. Stress Sensitivity of Permeability
4. Discussion
5. Conclusions
- (1)
- Reef limestone samples have a significant primary pore structure, with a highly developed pore network. The T2 transverse relaxation time of the sample in a saturated state is mainly distributed between 100 ms and 10,000 ms, with large pores dominating the sample.
- (2)
- The permeability of the reef limestones is mainly controlled by the dominant flow channels formed by large pores, rather than the total pore volume. During the confining pressure loading process, the pore structure inside the sample undergoes reorganization, with compression of large pores and generation of smaller pores, resulting in a decrease in effective flow paths and a decrease in permeability.
- (3)
- During the unloading stage, there is a significant hysteresis effect in the permeability recovery. Due to irreversible damage caused by pore structure compression and collapse during the loading stage, the permeability of the sample cannot fully recover when unloaded to the initial stress state, with an irreversible permeability damage rate of 2.4%.
- (4)
- Based on the experimental results, the permeability stress sensitivity coefficient of reef limestones is calculated to be 1.1 × 10−1 MPa−1. This is higher than that of conventional terrestrial rocks. The results of this study will enhance researchers’ and engineers’ understanding of biogenic rocks in marine environments. The conclusions of this study provide important design references for excavation and support design in reef limestone formations.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| ρd (g/cm3) | ρsat (g/cm3) | ws (%) | vsat (m/s) |
|---|---|---|---|
| 0.87 | 1.46 | 67.0 | 2500.0 |
| Osmotic Pressure/kPa | Confining Pressure (MPa) | Stress Path | Permeability (mD) |
|---|---|---|---|
| 500 | 2 | Loading | 439.6 |
| 3 | Loading | 414.6 | |
| 4 | Loading | 353.2 | |
| 3 | Unloading | 336.2 | |
| 2 | Unloading | 429.0 |
| Penetration Damage Rate (%) | Damage Degree |
|---|---|
| D ≤ 5 | None |
| 5 < D ≤ 30 | Weak |
| 30 < D ≤ 50 | Moderately weak |
| 50 < D ≤ 70 | Moderately strong |
| D > 70 | Strong |
| Stress Path | Effective Stress (MPa) | Penetration Damage Rate (%) | Damage Degree |
|---|---|---|---|
| Loading | 2.5 | 5.7 | Weak |
| 3.5 | 19.6 | Weak | |
| Unloading | 2.5 | 23.5 | Weak |
| 1.5 | 2.4 | Weak |
| Source | Rock Type | Confining Pressure (MPa) | Stress Sensitivity Coefficient/(MPa−1) |
|---|---|---|---|
| This study | Reef limestone | 2–4 | 1.1 × 10−1 |
| David 1994 [39] | Adamswiller | 80.5–151 | 1.2 × 10−2 |
| Fontainebleau | 80.5–151 | 1 × 10−2 | |
| Berea | 80.5–151 | 1 × 10−2 | |
| Rothbach | 80.5–151 | 1.8 × 10−2 | |
| Boise | 80.5–151 | 0.7 × 10−2 | |
| Wang 2018 [40] | Purbeck limestone | 6–18 | 3.6 × 10−3 |
| Indiana limestone | 3–15 | 3.2 × 10−3 | |
| Thala limestone | 7–15 | 1.2 × 10−3 | |
| Leitha limestone | 7–15 | 1.1 × 10−3 | |
| Hu 2020 [30] | Cobourg limestone | 5–20 | 4.5 × 10−2–7.1 × 10−2 |
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Mo, Y.; Liu, H.; Zhang, Y.; Zhai, S.; Chen, P.; Qu, R.; Ji, F. Mechanism of Permeability Evolution in Coral Reef Limestone Under Variable Confined Pressure Using Nuclear Magnetic Resonance Technology. J. Mar. Sci. Eng. 2025, 13, 2218. https://doi.org/10.3390/jmse13122218
Mo Y, Liu H, Zhang Y, Zhai S, Chen P, Qu R, Ji F. Mechanism of Permeability Evolution in Coral Reef Limestone Under Variable Confined Pressure Using Nuclear Magnetic Resonance Technology. Journal of Marine Science and Engineering. 2025; 13(12):2218. https://doi.org/10.3390/jmse13122218
Chicago/Turabian StyleMo, Yang, Haifeng Liu, Yongtao Zhang, Shun Zhai, Peishuai Chen, Ru Qu, and Fuquan Ji. 2025. "Mechanism of Permeability Evolution in Coral Reef Limestone Under Variable Confined Pressure Using Nuclear Magnetic Resonance Technology" Journal of Marine Science and Engineering 13, no. 12: 2218. https://doi.org/10.3390/jmse13122218
APA StyleMo, Y., Liu, H., Zhang, Y., Zhai, S., Chen, P., Qu, R., & Ji, F. (2025). Mechanism of Permeability Evolution in Coral Reef Limestone Under Variable Confined Pressure Using Nuclear Magnetic Resonance Technology. Journal of Marine Science and Engineering, 13(12), 2218. https://doi.org/10.3390/jmse13122218

