Impact of Diverse Calcite Vein Patterns on Dissolution Characteristics of Triassic Limestone in Three Gorges Reservoir Area
Abstract
:1. Introduction
2. Experiment
2.1. Limestone Sample Preparation
2.2. Testing Apparatus and Method
2.2.1. Sulfuric Acid Solution–Limestone Reaction Test
2.2.2. Water Absorption Test Under Normal Pressure and Temperature (NPT) Conditions
2.2.3. Microstructure Imaging
2.2.4. Mineral Composition Analysis
2.2.5. Fractal Dimension Analysis
2.2.6. Morphological Characterization and Roundness Quantification
3. Results and Analysis
3.1. Comparative Analysis of Limestone’s Macrostructural Characteristics Before and After Acid-Induced Dissolution
3.1.1. Comparative Macrostructural Analysis of Limestone Without Veins Before and After Acid-Induced Dissolution
3.1.2. Comparative Macrostructural Analysis of Limestone with Sparse, Broad Calcite Veins Before and After Acid-Induced Dissolution
3.1.3. Comparative Macrostructural Analysis of Limestone with Dense, Fine Calcite Veins Before and After Acid-Induced Dissolution
3.2. Comparative Microstructural Analysis of Limestone Before and After Acid-Induced Dissolution
3.2.1. Comparative Microstructural Analysis of Limestone Without Veins Before and After Acid-Induced Dissolution
3.2.2. Comparative Microstructural Analysis of Limestone with Sparse, Broad Calcite Veins Before and After Acid-Induced Dissolution
3.2.3. Comparative Microstructural Analysis of Limestone with Dense, Fine Calcite Veins Before and After Acid-Induced Dissolution
3.3. Evaluating Mineralogical Changes Pre- and Post-Dissolution
3.3.1. Mineralogical Analysis via Field Emission Scanning Electron Microscopy
3.3.2. Assessing Dolomite Roundness in Three Varieties of Limestone
4. Discussion
5. Conclusions
- (1)
- Dissolution primarily occurs around microstructural planes, such as pores and cracks, altering their shapes, increasing their sizes, and generating extensive new dissolution fissures.
- (2)
- Calcite veins significantly affect the microscopic dissolution features of Triassic limestone. The contact surfaces between the host rock and calcite veins increase the dissolution areas between the limestone and sulfuric acid solution and intensify dissolution reactions. The dissolution intensity is more dependent on vein quantity than width.
- (3)
- Under normal temperature and pressure, Triassic limestone’s mineral types remain constant during dissolution. However, dolomite particles are gradually dissolved to approach roundness, and the presence of calcite veins promotes the dissolution of edges and corners.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Limestone Types | Calcite (%) | Feldspar (%) | Quartz (%) | Clay (%) | Dolomite (%) | Pyrite (%) |
---|---|---|---|---|---|---|
Limestone without veins | 66.4 | 21.3 | 4.6 | 4.6 | 2.8 | 0.2 |
Limestone with sparse, broad calcite veins | 72.5 | 19.4 | 3.6 | 3.8 | 0.6 | 0.0 |
Limestone with multiple fine calcite veins | 68.8 | 18.9 | 5.4 | 5.2 | 1.7 | 0.0 |
Limestone Type | Specimen Types | Average Water Absorption (%) | Standard Deviation (%) |
---|---|---|---|
Limestone without veins | specimen without calcite veins | 0.07 | 0.01 |
Limestone with sparse, broad calcite veins | specimen with a distinct broad calcite vein | 0.10 | 0.02 |
Limestone with multiple fine calcite veins | specimen with multiple fine calcite veins | 0.13 | 0.02 |
Limestone Types | Dolomite Content in Various Roundness Intervals | |||||
---|---|---|---|---|---|---|
R = 1 | 1 < R ≤ 3 | 3 < R ≤ 5 | 5 < R ≤ 7 | 7 < R ≤ 9 | R ≥ 9 | |
L (pre) | 18.55% | 39.52% | 19.35% | 3.23% | 0 | 19.35% |
L (post) | 19.21% | 45.79% | 14.29% | 3.21% | 1.43% | 16.07% |
Gradient | 0.67% | 6.27% | −5.07% | −0.01% | 1.43% | −3.28% |
LB (pre) | 25.14% | 33.71% | 15.43% | 8.00% | 0.57% | 17.14% |
LB (post) | 26.62% | 48.92% | 9.35% | 6.91% | 2.16% | 6.04% |
Gradient | 1.48% | 15.21% | −6.08% | −1.09% | 1.59% | −11.11% |
LF (pre) | 29.41% | 34.45% | 14.29% | 0.84% | 0 | 21.01% |
LF (post) | 29.61% | 53.99% | 11.05% | 0.82% | 2.55% | 1.98% |
Gradient | 0.20% | 19.53% | −3.24% | −0.02% | 2.55% | −19.03% |
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Guo, J.; Li, S.; He, J.; Zhang, Z.; Li, X. Impact of Diverse Calcite Vein Patterns on Dissolution Characteristics of Triassic Limestone in Three Gorges Reservoir Area. Water 2025, 17, 1550. https://doi.org/10.3390/w17101550
Guo J, Li S, He J, Zhang Z, Li X. Impact of Diverse Calcite Vein Patterns on Dissolution Characteristics of Triassic Limestone in Three Gorges Reservoir Area. Water. 2025; 17(10):1550. https://doi.org/10.3390/w17101550
Chicago/Turabian StyleGuo, Jingyun, Shouding Li, Jianming He, Zhaobin Zhang, and Xiao Li. 2025. "Impact of Diverse Calcite Vein Patterns on Dissolution Characteristics of Triassic Limestone in Three Gorges Reservoir Area" Water 17, no. 10: 1550. https://doi.org/10.3390/w17101550
APA StyleGuo, J., Li, S., He, J., Zhang, Z., & Li, X. (2025). Impact of Diverse Calcite Vein Patterns on Dissolution Characteristics of Triassic Limestone in Three Gorges Reservoir Area. Water, 17(10), 1550. https://doi.org/10.3390/w17101550