Reservoir Heterogeneity and Vertical Differentiation of the Marine Shales in the Permian Gufeng Formation, Western Hubei, China: Insights from NMR and Micro-CT Analyses
Abstract
1. Introduction
2. Geological Setting
3. Samples and Methods
3.1. Sample Collection
3.2. Methodology
3.2.1. Total Organic Carbon Analysis
3.2.2. Mineralogical Analysis and Lithofacies Classification
3.2.3. NMR Measurements and Parameter Extraction
3.2.4. Micro-CT Analysis
3.2.5. Scanning Electron Microscopy (SEM) Analysis
4. Results
4.1. TOC Characteristics
4.2. Mineralogical Characteristics
| Sample Code | Quartz | Albite | Orthoclase | Illite | Muscovite | Kaolinite | Pyrite | Calcite | Dolomite | Gypsum |
|---|---|---|---|---|---|---|---|---|---|---|
| YPD-A2 | 87.20 | 11.40 | 1.40 | |||||||
| YPD-A3 | 90.90 | 9.10 | ||||||||
| YPD-A5 | 82.50 | 0.00 | 3.80 | 3.00 | 9.80 | 0.90 | ||||
| YPD-A6 | 63.94 | 5.19 | 10.39 | 19.38 | 1.10 | |||||
| YPD-A9 | 28.17 | 9.46 | 1.94 | 57.53 | 2.90 | |||||
| YPD-A10 | 56.50 | 7.00 | 36.20 | 0.30 | ||||||
| YPD-A12 | 61.44 | 6.19 | 30.77 | 1.60 | ||||||
| YPD-A13 | 76.40 | 1.30 | 8.60 | 2.40 | 10.50 | 0.80 | ||||
| YPD-A16 | 35.20 | 3.50 | 4.30 | 21.30 | 34.10 | 1.60 | ||||
| YPD-A17 | 37.00 | 2.10 | 4.80 | 1.70 | 37.90 | 15.80 | 0.70 | |||
| YPD-A19 | 81.58 | 5.71 | 10.51 | 2.20 | ||||||
| YPD-A20 | 68.10 | 4.60 | 1.40 | 25.90 | 0.00 | |||||
| YPD-A21 | 65.60 | 5.50 | 1.60 | 26.10 | 1.20 | |||||
| YPD-A22 | 50.75 | 1.40 | 6.31 | 2.40 | 37.74 | 1.20 | ||||
| YPD-A23 | 88.41 | 7.39 | 1.60 | 0.40 | 1.30 | |||||
| YPD-A24 | 81.10 | 7.20 | 2.10 | 8.90 | ||||||
| YPD-A25 | 86.57 | 6.21 | 1.60 | 4.91 | 0.70 | |||||
| YPD-A26 | 89.40 | 5.90 | 1.60 | 2.40 | 0.70 | |||||
| YPD-A27 | 88.29 | 6.71 | 1.70 | 1.70 | 1.60 | |||||
| YPD-A29 | 74.90 | 6.50 | 1.70 | 16.90 | ||||||
| YPD-A30 | 81.00 | 6.50 | 1.90 | 10.30 | ||||||
| YPD-A32 | 21.12 | 2.70 | 4.20 | 2.10 | 69.37 | 0.50 | ||||
| YPD-A33 | 77.08 | 6.61 | 10.51 | 2.30 | 1.30 | 2.20 | ||||
| YPD-A35 | 85.17 | 3.20 | 9.73 | 1.10 | 0.80 | |||||
| YPD-A37 | 85.39 | 2.30 | 10.31 | 1.10 | 0.30 | 0.60 | ||||
| YPD-A41 | 76.30 | 7.50 | 12.10 | 1.80 | 1.50 | 0.80 | ||||
| YPD-A42 | 90.50 | 0.70 | 7.90 | 0.90 | ||||||
| YPD-A45 | 78.98 | 4.40 | 12.91 | 3.70 | ||||||
| YPD-A48 | 74.60 | 19.50 | 5.90 | |||||||
| YPD-A49 | 69.73 | 9.19 | 5.49 | 11.29 | 4.30 |
4.3. Lithofacies Characteristics
4.4. NMR-Derived Reservoir Properties
4.4.1. Implications of T2cutoff and BFS for Pore–Throat Scale and Reservoir Effectiveness
4.4.2. Fluid Mobility Revealed by Saturated and Centrifuged T2 Spectra
4.4.3. NMR-Defined Reservoir Response Types
4.4.4. Vertical Variation in NMR-Defined Reservoir Types
4.5. SEM Analysis of Pore Types and Microfractures
4.6. Micro-CT Characterization of Representative Samples
5. Discussion
5.1. Integrated Controls on Reservoir Heterogeneity
5.1.1. TOC Control on Pore Generation and Reservoir Differentiation
5.1.2. Mineralogical Framework Regulates Pore Preservation and Fluid Mobility
5.1.3. Pore–Throat Connectivity Is the Key Link Between Storage Space and Reservoir Effectiveness
5.2. Quantitative Constraints on Reservoir Properties and Reservoir Response
5.3. Integrated Reservoir Quality Evaluation and Conceptual Model for Vertical Differentiation
5.4. Implications for Identifying Favorable Reservoir Intervals
6. Limitations and Future Research Directions
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Sample Code | Interval (m) | Lithofacies | TOC (%) | NMR-Derived Parameters | NMR-Defined Reservoir Response Type | |||||
|---|---|---|---|---|---|---|---|---|---|---|
| Porosity (%) | Permeability (mD) | T2cutoff (ms) | BFS (%) | FFS (%) | T2 (ms) | |||||
| YPD-A2 | 0.5 | high-organic matter siliceous shale | 8.41 | 6.91 | 0.0318 | 0.44 | 72.83 | 27.17 | 0.29 | Type I |
| YPD-A3 | 0.5 | high-organic matter siliceous shale | 7.07 | 18.77 | 72.0891 | 2.37 | 29.32 | 70.68 | 13.05 | Type II; locally enhanced |
| YPD-A5 | 0.8 | high-organic matter siliceous shale | 4.59 | 9.92 | 0.2515 | 0.35 | 66.26 | 33.74 | 0.27 | Type I |
| YPD-A6 | 0.5 | high-organic matter siliceous shale | 7.14 | 6.03 | 0.0157 | 1.98 | 74.41 | 25.59 | 1.87 | Type I–II |
| YPD-A9 | 1.6 | high-organic matter calcareous shale | 8.73 | 8.63 | 0.0211 | 4.69 | 83.67 | 16.33 | 2.38 | Type I–II |
| YPD-A10 | 0.7 | high-organic matter siliceous shale | 4.93 | 3.55 | 0.0016 | 3.21 | 75.86 | 24.14 | 2.38 | Type I–II |
| YPD-A12 | 0.6 | high-organic matter siliceous shale | 5.93 | 5.53 | 0.0297 | 4.04 | 64.01 | 35.99 | 3.04 | Type I–II |
| YPD-A13 | 0.5 | high-organic matter siliceous shale | 5.36 | 2.96 | 0.0018 | 2.43 | 67.22 | 32.78 | 2.38 | Type I–II |
| YPD-A16 | 1.3 | high-organic matter calcareous shale | 4.42 | 16.29 | 205.8860 | 0.06 | 15.62 | 84.38 | 4.20 | Type IV |
| YPD-A17 | 0.5 | medium-organic matter calcareous shale | 3.63 | 4.25 | 0.0140 | 2.98 | 60.16 | 39.84 | 3.04 | Type I–II |
| YPD-A19 | 1.3 | low organic matter siliceous shale | 1.65 | 2.24 | <0.0001 | 11.75 | 82.12 | 17.88 | 1.06 | Type I |
| YPD-A20 | 0.5 | low organic matter siliceous shale | 1.6 | 10.09 | 0.1674 | 28.92 | 71.34 | 28.66 | 23.00 | Type III |
| YPD-A21 | 0.5 | medium-organic matter siliceous shale | 2 | 6.59 | 12.5611 | 1.22 | 10.93 | 89.07 | 18.04 | Type IV |
| YPD-A22 | 0.5 | high-organic matter siliceous shale | 5.66 | 6.28 | 0.0821 | 2.67 | 57.97 | 42.03 | 2.80 | Type I–II |
| YPD-A23 | 0.3 | high-organic matter siliceous shale | 4.82 | 11.29 | 8.0797 | 1.40 | 30.96 | 69.04 | 3.04 | Type II |
| YPD-A24 | 0.5 | high-organic matter siliceous shale | 5.23 | 6.90 | 0.9079 | 0.77 | 33.32 | 66.68 | 9.44 | Type II |
| YPD-A25 | 0.5 | medium-organic matter siliceous shale | 2.4 | 3.76 | 0.0159 | 5.22 | 52.85 | 47.15 | 2.58 | Type II-T |
| YPD-A26 | 0.5 | medium-organic matter siliceous shale | 3.53 | 4.06 | 0.0517 | 3.01 | 42.09 | 57.91 | 21.21 | Type III |
| YPD-A27 | 0.5 | high-organic matter siliceous shale | 4.14 | 9.33 | 0.0283 | 18.52 | 83.82 | 16.19 | 16.64 | Type III |
| YPD-A29 | 1.5 | high-organic matter siliceous shale | 4.57 | 2.20 | 0.0001 | 5.60 | 79.88 | 20.12 | 3.29 | Type I–II |
| YPD-A30 | 0.5 | medium-organic matter siliceous shale | 2.43 | 5.02 | 0.1174 | 2.13 | 42.35 | 57.65 | 3.57 | Type II |
| YPD-A32 | 1.1 | high-organic matter calcareous shale | 6.18 | 2.64 | 0.0007 | 3.19 | 72.11 | 27.89 | 2.20 | Type I–II |
| YPD-A33 | 0.5 | high-organic matter siliceous shale | 12.48 | 12.41 | 5.3005 | 0.41 | 40.08 | 59.92 | 0.55 | Type II |
| YPD-A35 | 1 | high-organic matter siliceous shale | 13.54 | 18.24 | 7.6152 | 2.09 | 54.66 | 45.34 | 1.59 | Type II |
| YPD-A37 | 1.3 | high-organic matter siliceous shale | 13.92 | 11.18 | 0.0567 | 2.60 | 83.99 | 16.01 | 1.25 | Type I–II |
| YPD-A41 | 2.3 | high-organic matter siliceous shale | 12.94 | 10.02 | 2.4519 | 0.26 | 39.07 | 60.93 | 0.60 | Type II |
| YPD-A42 | 0.5 | high-organic matter siliceous shale | 5.14 | 8.66 | 6.8914 | 0.47 | 22.22 | 77.78 | 1.59 | Type II |
| YPD-A45 | 2 | high-organic matter siliceous shale | 8.44 | 6.25 | 0.0358 | 0.61 | 67.35 | 32.65 | 0.55 | Type I |
| YPD-A48 | 1.2 | high-organic matter siliceous shale | 21.38 | 9.50 | 0.2108 | 0.48 | 66.28 | 33.72 | 0.43 | Type I |
| YPD-A49 | 0.5 | high-organic matter siliceous shale | 18.04 | 9.73 | 0.0627 | 0.66 | 79.07 | 20.93 | 0.51 | Type I |
| Sample Code | Pore Radius Range (μm) | Proportion of Pores < 1.5 μm (%) | Average Pore Radius (μm) | Average Pore Volume (μm3) | Average Specific Surface Area (μm2) | Throat Number | Pore Number |
|---|---|---|---|---|---|---|---|
| YPD-A6 | 1.08–6.84 | 89.75 | 1.21 | 10.42 | 15.29 | 52 | 81,038 |
| YPD-A24 | 1.02–5.57 | 87.37 | 1.23 | 11.01 | 16.78 | 0 | 91,951 |
| YPD-A30 | 1.03–4.09 | 98.17 | 1.11 | 6.58 | 11.29 | 0 | 26,925 |
| YPD-A49 | 1.08–3.79 | 59.48 | 1.48 | 18.21 | 25.99 | 0 | 9094 |
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Cai, Y.; Yang, X.; Wu, T.; Shangguan, Y. Reservoir Heterogeneity and Vertical Differentiation of the Marine Shales in the Permian Gufeng Formation, Western Hubei, China: Insights from NMR and Micro-CT Analyses. J. Mar. Sci. Eng. 2026, 14, 1131. https://doi.org/10.3390/jmse14121131
Cai Y, Yang X, Wu T, Shangguan Y. Reservoir Heterogeneity and Vertical Differentiation of the Marine Shales in the Permian Gufeng Formation, Western Hubei, China: Insights from NMR and Micro-CT Analyses. Journal of Marine Science and Engineering. 2026; 14(12):1131. https://doi.org/10.3390/jmse14121131
Chicago/Turabian StyleCai, Yunhe, Xiangrong Yang, Tianchi Wu, and Yunfei Shangguan. 2026. "Reservoir Heterogeneity and Vertical Differentiation of the Marine Shales in the Permian Gufeng Formation, Western Hubei, China: Insights from NMR and Micro-CT Analyses" Journal of Marine Science and Engineering 14, no. 12: 1131. https://doi.org/10.3390/jmse14121131
APA StyleCai, Y., Yang, X., Wu, T., & Shangguan, Y. (2026). Reservoir Heterogeneity and Vertical Differentiation of the Marine Shales in the Permian Gufeng Formation, Western Hubei, China: Insights from NMR and Micro-CT Analyses. Journal of Marine Science and Engineering, 14(12), 1131. https://doi.org/10.3390/jmse14121131

