Saturated Volume Fracturing Technology for Horizontal Well Groups in Coal Seam Roof and Application in the Huainan Mining Area
Abstract
1. Introduction
2. Geological and Engineering Conditions of the Study Area
2.1. Stratigraphic Background
2.2. Mineral Composition
2.3. Drilling Operation Overview
3. Fracture Propagation Mechanism and Main Controlling Factors of Saturated Fracturing
3.1. Feasibility Analysis of Fracture Propagation Through Layers
3.2. Proppant Transport Analysis
3.3. Analysis of Cluster Fracturing Propagation Behavior
3.4. Differences in Fracture Propagation Mechanisms Between Saturated Fracturing and Conventional Fracturing
4. Optimization of Saturated Volume Fracturing Parameters for Horizontal Wells
4.1. Numerical Simulation Setup
4.2. Fracturing Fluid and Proppant System
4.3. Optimization of Fracturing Treatment Parameters
4.3.1. Number of Perforations
4.3.2. Cluster Spacing
4.3.3. Pump Rate
4.3.4. Fracturing Treatment Scale
4.4. Parameter Optimization for Saturated Volume Fracturing
5. Field Test and Effect Evaluation
5.1. Overall Fracturing Operation of the Horizontal Well Group
5.2. Comparison of Treatment Parameters Between Conventional Fracturing and Volume Fracturing
5.3. Evaluation of Volume Fracturing Effectiveness
5.3.1. Microseismic Monitoring Methodology
5.3.2. Analysis of Fracture Geometry and Stimulated Reservoir Volume
5.4. Gas Production Performance Analysis
5.4.1. Production Decline Curves of Saturated Volume Fracturing Wells
5.4.2. Characteristics of Production Decline Curves for Conventional Fracturing Wells
6. Discussion
6.1. Applicability Conditions of Saturated Volume Fracturing Technology in Medium-Deep Coal Seams
6.2. Future Research Directions for Saturated Volume Fracturing Technology
- (1)
- Fine characterization of ‘sweet spots’ in medium-deep CBM reservoirs and the establishment of an adaptability evaluation system for saturated volume fracturing
- (2)
- Development of highly efficient, low-damage saturated volume fracturing technology and material systems
- (3)
- Intelligent optimization of production systems for saturated volume fracturing wells and construction of productivity prediction models
7. Conclusions
- (1)
- Optimal perforation density is 12 holes per m per cluster with 15 to 25 m spacing, promoting uniform multi-fracture propagation via limited-entry and moderate stress interference.
- (2)
- Saturated fracturing, defined as single-stage fluid volume exceeding 2400 cubic m, proppant volume exceeding 250 cubic meters, and maximum sand ratio exceeding 20 percent, increases fracture half-length by approximately 50 percent and significantly enlarges the SRV compared to conventional fracturing.
- (3)
- Field wells PS-8-8 and PS-8-10 achieved stable gas production rates of approximately 3000 and 2000 cubic m per day respectively, with ramp-up rates five times higher than the conventional well PX1-2, which achieved only 550 cubic meters per day.
- (4)
- Applicability of this technology requires low permeability, low horizontal stress difference, strong mechanical contrast between roof and floor, and moderately high brittleness.
- (5)
- Future work should integrate sweet-spot characterization, low-damage fracturing fluids, and artificial intelligence-based production optimization.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Sample No. | Whole-Rock Quantitative Analysis (%) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Clay | Gypsum | Anhydrite | Aragonite | Quartz | K-Feldspar | Plagioclase | Calcite | Siderite | Amphibole | |
| 8# coal | 25.5 | 3.8 | / | 1.3 | 8.3 | / | / | / | / | 61.1 |
| Roof of 8# coal | 24.6 | / | 0.8 | / | 56.2 | 0.9 | 14.9 | 1.0 | 1.6 | / |
| Floor of 8# coal | 55.6 | / | / | / | 17.8 | / | / | / | 26.6 | / |
| Well No. | Number of Fracturing Stages | Fluid Volume (m3) | Proppant Volume (m3) | Avg. Fluid Volume per Stage (m3) | Avg. Proppant Volume per Stage (m3) | Max. Sand Ratio (%) |
|---|---|---|---|---|---|---|
| Well PS-8-8 | 10 | 24,226.00 | 2620.00 | 2422.60 | 262.00 | 24.1 |
| Well PS-8-10 | 10 | 27,587.80 | 2574.50 | 2758.78 | 257.45 | 22.2 |
| Well PX1-2 | 13 | 20,580 | 910.00 | 1583.07 | 70.00 | 4.95 |
| Well No. | Stage No. | Fracture Length (m) | Fracture Height (m) | SRV/104 Cubic m |
|---|---|---|---|---|
| Well PS-8-8 | 5 | 397 | 30 | 137.00 |
| 7 | 408 | 25 | 151.00 | |
| Well PS-8-10 | 3 | 382 | 35 | 126.70 |
| 6 | 418 | 30 | 115.75 | |
| Well PX1-2 | 3 | 268.4 | 38 | / |
| 6 | 228.7 | 30.1 | / |
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Ding, H.; Zhu, S.; Su, L.; Li, H.; Qi, J.; Sun, S.; Chen, B. Saturated Volume Fracturing Technology for Horizontal Well Groups in Coal Seam Roof and Application in the Huainan Mining Area. Energies 2026, 19, 2903. https://doi.org/10.3390/en19122903
Ding H, Zhu S, Su L, Li H, Qi J, Sun S, Chen B. Saturated Volume Fracturing Technology for Horizontal Well Groups in Coal Seam Roof and Application in the Huainan Mining Area. Energies. 2026; 19(12):2903. https://doi.org/10.3390/en19122903
Chicago/Turabian StyleDing, Huazhong, Shiliang Zhu, Lei Su, Haozhe Li, Jianjian Qi, Siqing Sun, and Benliang Chen. 2026. "Saturated Volume Fracturing Technology for Horizontal Well Groups in Coal Seam Roof and Application in the Huainan Mining Area" Energies 19, no. 12: 2903. https://doi.org/10.3390/en19122903
APA StyleDing, H., Zhu, S., Su, L., Li, H., Qi, J., Sun, S., & Chen, B. (2026). Saturated Volume Fracturing Technology for Horizontal Well Groups in Coal Seam Roof and Application in the Huainan Mining Area. Energies, 19(12), 2903. https://doi.org/10.3390/en19122903

