Characterization of Matrix Pore Structure of a Deep Coal-Rock Gas Reservoir in the Benxi Formation, NQ Block, ED Basin
Abstract
1. Introduction
2. Experimental
2.1. Materials
2.2. Experimental Setup
2.3. Experimental Procedures
2.3.1. Proximate Analysis
2.3.2. Vitrinite Reflectance Analysis
2.3.3. Maceral Composition Analysis
2.3.4. SEM Analysis
2.3.5. Physisorption Experiments
2.3.6. HPMI Tests
3. Results and Discussion
3.1. Mineral Characteristics and Coal Morphology
3.2. Micropore Distribution Characteristics
3.3. Mesopore Distribution Characteristics
3.4. Macropore Distribution Characteristics
3.5. Multi-Scale Pore Distribution Characteristics
4. Conclusions
- (1)
- The DCR in the NQ Block is predominantly composed of vitrinite, accounting for approximately 77.75%, followed by inertinite. The pore space is predominantly characterized by cellular pores with minor contributions from intercrystalline and dissolution pores, but porosity development is relatively limited as most of these pores are extensively filled with clay minerals.
- (2)
- The PV and SSA of micropores in the NQ Block and the eastern part of the Basin exhibit multi-peak distribution characteristics. Notably, there are substantial differences in SSA and PV between the NQ Block and the eastern part of the Basin. In the DJ Block located in the eastern part of the Basin, the SSA and PV for the micropores per unit mass of DCR are 186.045 m2/g and 0.055 cm3/g, respectively, while t-tests confirm that the micropore SSA of the DJ Block is 2.4 times higher (p < 0.01). The degree of micropore development in the NQ Block is relatively comparable to that of the SF Block but significantly differs from that of the DJ Block, which is potentially attributable to variations in the DCR pore structure.
- (3)
- The PV of the mesopores per unit mass of DCR in the NQ Block is 0.004 cm3/g, which is comparable to that of the SF Block and the DJ Block located in the eastern part of the Basin; however, the SSA of the mesopores per unit mass of DCR in the NQ Block is significantly higher at 3.445 m2/g compared to 0.596 m2/g and 1.869 m2/g for the SF Block and the DJ Block, respectively, indicating a marked disparity in the SSA of the mesopores among these blocks. For macropores, the distribution of macropores in the NQ Block shows relatively close resemblance to that of the DJ Block in the eastern part of the Basin.
- (4)
- The SSA and PV per unit mass of DCR of the NQ Block and the DJ Block exhibit an L-shape distribution characteristic. Micropores dominate as the primary pore type, contributing significantly to both the SSA and PV. The NQ Block has a total SSA per unit mass of DCR of 81.215 m2/g and a PV of 0.030 cm3/g, whereas the DJ Block exhibits a total SSA per unit mass of DCR of 187.926 m2/g and a PV of 0.060 cm3/g. Notably, the SSA of the DJ Block was 2.3 times greater than that of the NQ Block; this was primarily due to differences in the SSA of micropores.
- (5)
- For the coal seams targeted for development, particularly in regions where the clay content is <20% (Table 2) and the vitrinite content >60%, large-scale hydraulic fracturing should be implemented to improve the accessibility of micropores and enhance the gas production rate.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Coal Samples | Porosity (%) | Permeability (mD) | Qt-Ar (cm3/g) |
---|---|---|---|
1 | 3.40 | 0.19 | 6.69 |
2 | 6.60 | 0.33 | 7.76 |
3 | 4.40 | 0.28 | 6.47 |
4 | 5.20 | 0.12 | 8.44 |
Coal Samples | Mad (%) | Aad (%) | Vad (%) | FCad (%) | Ro,max (%) | Maceral (%) | ||
---|---|---|---|---|---|---|---|---|
Vitrinite | Inertinite | Other | ||||||
2 | 0.64 | 25.85 | 10.75 | 62.76 | 1.86 | 76.20 | 20.20 | 3.60 |
3 | 054 | 38.11 | 12.02 | 49.33 | 1.87 | 78.20 | 19.40 | 2.40 |
4 | 0.63 | 22.45 | 10.80 | 66.12 | 1.87 | 77.20 | 19.40 | 2.80 |
Parameter | Pore Type | Western ED Basin | Eastern ED Basin | |
---|---|---|---|---|
NQ Block (n = 2) | DJ Block (n = 5) | SF Block (n = 4) | ||
SSA (m2/g) | Micropore | 77.754 ± 16.1140 | 186.045 ± 19.8858 | 91.519 ± 8.8930 |
Mesopore | 3.445 ± 0.1080 | 1.869 ± 0.3220 | 0.596 ± 0.0153 | |
Macropore | 0.016 ± 0.0040 | 0.012 ± 0.0050 | N/A | |
Total PV (cm3/g) | Micropore | 0.024 ± 0.0050 | 0.055 ± 0.0060 | 0.036 ± 0.0030 |
Mesopore | 0.004 ± 0.0001 | 0.004 ± 0.0007 | 0.003 ± 0.0010 | |
Macropore | 0.002 ± 0.0010 | 0.001 ± 0.0003 | N/A |
Coal Samples | MMS (%) | MEE (%) | Pt (MPa) | P50 (MPa) | α | Sp |
---|---|---|---|---|---|---|
2 | 87.9 | 89.7 | 0.270 | 100.7 | 0.095 | 2.245 |
3 | 84.2 | 76.8 | 0.465 | 97.4 | 0.156 | 2.674 |
ED Basin | Coal Samples | Measured Micropores with CO2 Adsorption | Measured Mesopores with N2 Adsorption | Measured Macropores with HPMI Tests | |||
---|---|---|---|---|---|---|---|
Total PV (cm3/g) | SSA (m2/g) | Total PV (cm3/g) | SSA (m2/g) | Total PV (cm3/g) | SSA (m2/g) | ||
NQ Block | 2 | 0.029 | 93.868 | 0.004 | 3.337 | 0.003 | 0.020 |
3 | 0.019 | 61.641 | 0.004 | 3.553 | 0.001 | 0.012 | |
Mean (n = 2) | 0.024 ± 0.0050 | 77.754 ± 16.1140 | 0.004 ± 0.0001 | 3.445 ± 0.1080 | 0.002 ± 0.0010 | 0.016 ± 0.0040 | |
DJ Block | DJ57-1 | 0.056 | 190.433 | 0.006 | 2.865 | 0.001 | 0.028 |
DJ57-2 | 0.073 | 246.819 | 0.002 | 1.044 | 0.000 | 0.003 | |
DJ57-3 | 0.042 | 143.664 | 0.003 | 1.335 | 0.001 | 0.018 | |
DJ57-4 | 0.041 | 141.940 | 0.005 | 2.208 | 0.001 | 0.001 | |
DJ57-5 | 0.061 | 207.370 | 0.004 | 1.892 | 0.002 | 0.010 | |
Mean (n = 5) | 0.055 ± 0.0060 | 186.045 ± 19.8858 | 0.004 ± 0.0007 | 1.869 ± 0.3220 | 0.001 ± 0.0003 | 0.012 ± 0.0050 |
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Liu, G.; Wang, D.; Peng, X.; Zhang, Q.; Liu, B.; Luo, Z.; Zhang, Z.; Yang, D. Characterization of Matrix Pore Structure of a Deep Coal-Rock Gas Reservoir in the Benxi Formation, NQ Block, ED Basin. Eng 2025, 6, 142. https://doi.org/10.3390/eng6070142
Liu G, Wang D, Peng X, Zhang Q, Liu B, Luo Z, Zhang Z, Yang D. Characterization of Matrix Pore Structure of a Deep Coal-Rock Gas Reservoir in the Benxi Formation, NQ Block, ED Basin. Eng. 2025; 6(7):142. https://doi.org/10.3390/eng6070142
Chicago/Turabian StyleLiu, Guangfeng, Dianyu Wang, Xiang Peng, Qingjiu Zhang, Bofeng Liu, Zhoujun Luo, Zeyu Zhang, and Daoyong Yang. 2025. "Characterization of Matrix Pore Structure of a Deep Coal-Rock Gas Reservoir in the Benxi Formation, NQ Block, ED Basin" Eng 6, no. 7: 142. https://doi.org/10.3390/eng6070142
APA StyleLiu, G., Wang, D., Peng, X., Zhang, Q., Liu, B., Luo, Z., Zhang, Z., & Yang, D. (2025). Characterization of Matrix Pore Structure of a Deep Coal-Rock Gas Reservoir in the Benxi Formation, NQ Block, ED Basin. Eng, 6(7), 142. https://doi.org/10.3390/eng6070142