Research on a Sand-Carrying Model of Horizontal Sections of Deep Coalbed Methane Wells
Abstract
1. Introduction
2. Theoretical Analysis
2.1. Sand Force Analysis
2.2. Establishment of the Critical Sand-Carrying Theoretical Model
3. Experimental System and Operating Conditions
3.1. Experimental Loop
3.2. Determination of the Experimental Scheme
3.3. Experimental Operation Conditions
4. Experimental Results and Discussion
4.1. Standard Deviation Analysis of Experimental Data
4.2. Analysis of Critical Flow State
4.3. Effect of Different Water Flow Rates on Sand-Carrying
4.4. Effect of Different Sand Diameters on Sand-Carrying
4.5. Effect of Different Inclination Angles on Sand-Carrying
4.6. Error Analysis of the Critical Sand-Carrying Theoretical Model
5. Conclusions
- (1)
- Through the analysis of the stress on sand particles, a critical sand-carrying model of the horizontal section of deep coalbed methane wellbore based on gravity, buoyancy, resistance, and pressure difference was established.
- (2)
- Based on a large multiphase flow experimental platform, a sand-carrying experiment was conducted in the horizontal section of the wellbore, and the critical flow pattern in the test pipe was analyzed. As the pipe inclination angle increases, larger sand piles slide down more easily. The fluid shear force is not enough to lift all the sand particles, resulting in a stronger critical sand-carrying capacity.
- (3)
- In the experiments without water, the critical gas capacity exhibited a positive correlation with particle diameter. In tests involving water injection, when the pipe inclination remained constant, increasing the liquid flow rate led to a decrease in the required gas flow rate. Conversely, when the liquid flow rate was fixed, increasing the inclination angle resulted in a higher required gas flow rate. Both sand particle diameter and pipe inclination have a positive correlation with the critical sand-carrying capacity. As either parameter increases, the gas flow rate required for sand-carrying also increases, leading to a higher critical gas–liquid ratio.
- (4)
- The constructed model was verified using indoor test data. The results show that the deviation between the calculated values and the actual test results is within 15%, and the model has high accuracy, which provides a theoretical basis for the sand production in the horizontal section of deep coalbed methane wells.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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System | Equipment Name | Working Conditions | Accuracy |
---|---|---|---|
Power systems | Single screw-rod air compressor (FHOGD-250) | Maximum displacement: 0.5787 m3/s; Working pressure range: 0~8 × 105 Pa. | |
Centrifugal pumps (D620-35X10) | Maximum displacement: 0.0019 m3/s; Working pressure range: 0~8 × 105 Pa. | ||
Sand Injection Pump (G/GH 6/4D) | Maximum displacement: 0.07 m3/s; Power range: 4~60 kW | ||
Measurement systems | Gas phase flow meter (Proline mass 65) | Scale: 0~0.5787 m3/s | ±0.1% (FS) |
Liquid flow meter (YK-LDF-DN10-B) | Scale: 0~0.002 m3/s | ±0.5% (FS) | |
Differential pressure gauge (TCT-1206) | Scale: 0~2.5864 × 105 Pa | ±0.05% (FS) | |
Manometer (Rosemount 3051S) | Scale: 0~1.2 × 107 Pa | ±0.1% (FS) | |
High-speed camera (NEO 25M/C) | Maximum frame rate: 25,000 fps; Resolution: 1280 × 1024. |
Number | Number of Sand Particles (Mesh) | Particle Size Range (mm) | Representative Particle Size (mm) | Material |
---|---|---|---|---|
S1 | 10~20 | 0.6~1.2 | 1 | Quartz sand |
S2 | 20~40 | 0.4~0.6 | 0.5 | Quartz sand |
S3 | 40~80 | 0.2~0.4 | 0.25 | Quartz sand |
Particle Size (mm) | Liquid Flow (m3/d) | Critical Sand-Carrying Capacity (m3/d) | Ave. | SD | SE | ||||
---|---|---|---|---|---|---|---|---|---|
Exp. 1 | Exp. 2 | Exp. 3 | Exp. 4 | Exp. 5 | |||||
0.25 | 6 | 124.35 | 124.88 | 124.88 | 124.92 | 124.95 | 124.80 | 0.25 | 0.11 |
10 | 92.15 | 92.38 | 92.17 | 92.32 | 92.43 | 92.29 | 0.13 | 0.06 | |
14 | 59.68 | 59.83 | 59.74 | 59.62 | 59.73 | 59.72 | 0.08 | 0.03 | |
0.5 | 6 | 212.83 | 212.83 | 212.76 | 212.78 | 212.78 | 212.80 | 0.03 | 0.01 |
10 | 122.56 | 122.55 | 122.68 | 122.74 | 122.88 | 122.69 | 0.14 | 0.06 | |
14 | 102.95 | 103.15 | 103.15 | 103.26 | 103.26 | 103.15 | 0.13 | 0.06 | |
1 | 6 | 293.18 | 293.18 | 293.15 | 293.15 | 293.09 | 293.15 | 0.04 | 0.02 |
10 | 175.93 | 175.93 | 175.89 | 175.86 | 175.86 | 175.89 | 0.04 | 0.02 | |
14 | 146.33 | 146.58 | 146.58 | 146.64 | 146.73 | 146.57 | 0.15 | 0.07 |
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Sun, L.; Qi, W.; Qi, W.; Hao, L.; Tang, A.; Yang, L.; Zhang, K.; Zhang, Y. Research on a Sand-Carrying Model of Horizontal Sections of Deep Coalbed Methane Wells. Processes 2025, 13, 1810. https://doi.org/10.3390/pr13061810
Sun L, Qi W, Qi W, Hao L, Tang A, Yang L, Zhang K, Zhang Y. Research on a Sand-Carrying Model of Horizontal Sections of Deep Coalbed Methane Wells. Processes. 2025; 13(6):1810. https://doi.org/10.3390/pr13061810
Chicago/Turabian StyleSun, Longfei, Weilin Qi, Wei Qi, Li Hao, Anda Tang, Lin Yang, Kang Zhang, and Yun Zhang. 2025. "Research on a Sand-Carrying Model of Horizontal Sections of Deep Coalbed Methane Wells" Processes 13, no. 6: 1810. https://doi.org/10.3390/pr13061810
APA StyleSun, L., Qi, W., Qi, W., Hao, L., Tang, A., Yang, L., Zhang, K., & Zhang, Y. (2025). Research on a Sand-Carrying Model of Horizontal Sections of Deep Coalbed Methane Wells. Processes, 13(6), 1810. https://doi.org/10.3390/pr13061810