Research on Foam Sand-Flushing Simulation of Coiled Tubing in Shale Gas Horizontal Wells
Abstract
1. Introduction
2. Establishment of a Foam Sand-Flushing Model for Horizontal Wells Using Coiled Tubing
2.1. Physical Model
2.2. Mathematical Model
- The gas in the foam fluid is compressible while the liquid is incompressible, and the mass ratio of gas to liquid in the foam remains constant regardless of the expansion or compression of the foam.
- The physical properties of the foam working fluid vary with temperature and pressure. At the same measured depth, these properties are assumed to be radially uniform.
- During near-balanced sand-flushing (Pbh = Pf + 0~1 MPa), no formation gas enters the wellbore. However, fixed fluid loss is assumed to occur at specified fracture locations along the horizontal annulus section. A leakoff coefficient is introduced to determine the total fluid-loss volume, and each leakoff point is assumed to account for a prescribed proportion of the total loss.
- The temperature distribution of the fluid in the coiled tubing and annulus is considered a one-dimensional distribution.
- Axial heat conduction and rotational deformation within the foam working fluid are not considered.
- Only heat conduction occurs in the formation; other modes of heat transfer are not considered, and the axial heat conduction of the casing wall is ignored.
2.2.1. Continuity Equation
2.2.2. Momentum Equation
- Within the straight section of the coiled tubing
- 2.
- Inside the coiled tubing spiral section
- 3.
- Jet section of the sand-flushing tool
- 4.
- Inside the annulus section
2.2.3. Energy Equation
- Inside the coiled tubing
- 2.
- The wall of the coiled tubing
- 3.
- In the annulus
- 4.
- Wall of the production casing
2.2.4. Auxiliary Equations
- Settling in the laminar flow regime (Res ≤ 1)
- Settling in the transitional flow regime (1 < Res ≤ 500)
- Settling in the turbulent flow regime (500 < Res ≤ 2 × 105)
3. Model Solving
3.1. Basic Data of Example Wells
3.2. The Variation Law of Fluid Parameters and Pressure Throughout the Whole Working Process
3.3. Validation of Model Results
4. Model Application
- Under known formation and wellbore conditions, it is used to determine whether stable foam sand-flushing can be achieved by ensuring foam stability throughout the wellbore, verifying that the bottomhole pressure satisfies the operational requirements, and ensuring that the total circulation time remains below the foam half-life, which is set to 130 min in this study.
- Once the operation is confirmed to be feasible, the model is used to optimize the sand-flushing rate by adjusting the operating parameters to maximize the coiled-tubing running speed.
4.1. Feasibility Evaluation of Sand-Flushing Operation
4.2. Optimize the Sand-Flushing Rate
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Item | Numerical | Unit | Item | Numerical | Unit |
|---|---|---|---|---|---|
| Well depth | 5750 | m | Inner diameter of the casing | 0.1143 | m |
| Vertical depth | 3550 | m | Sand particle diameter | 0.3 | mm |
| Vertical-well section length | 2850 | m | Grain density of sand | 2300 | kg/m3 |
| Inclined-well section length | 1100 | m | Sand-bed height | 0.1143 | m |
| Horizontal-well section length | 1800 | m | Ambient temperature | 20 | °C |
| Sand-flushing tool depth | 5250 | m | Coiled tubing running speed | 2 | m/min |
| Coiled tubing outer diameter | 0.0508 | m | Geothermal gradient | 2.5 | °C/100 m |
| Coiled tubing inner diameter | 0.0419 | m | Foam liquid -phase mass flow rate | 2 | kg/s |
| Total length of coiled tubing | 6500 | m | Foam gas-phase mass flow rate | 0.8 | kg/s |
| Spiral-section length | 1250 | m | Wellhead annular back pressure | 2 | MPa |
| Project | Numerical | Units |
|---|---|---|
| Pump pressure | 27.54 | MPa |
| Foam base-liquid flow rate | 0.12 | m3/min |
| Injection-gas flow rate under pump pressure | 0.15 | m3/min |
| Minimum foam quality | 0.5589 | / |
| Maximum foam quality | 0.9369 | / |
| Full circulation time | 127.8 | min |
| Case | Liquid Rate (kg/s) | Gas Rate (kg/s) | Choke Pr. (MPa) | CT Speed (m/min) | Pump Pr. (MPa) | BHP (MPa) | Min Quality | Max Quality | Full Circulation Time (min) |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 2.0 | 0.8 | 2.0 | 0.1 | 24.80 | 19.81 | 0.5846 | 0.9452 | 108.2 |
| 2 | 2.0 | 0.8 | 0.7 | 0.1 | 24.15 | 18.10 | 0.5911 | 0.98 | 98.9 |
| 3 | 1.8 | 0.66 | 0.65 | 0.1 | 21.91 | 17.84 | 0.5936 | 0.9788 | 114.5 |
| 4 | 1.5 | 0.58 | 0.67 | 0.1 | 20.56 | 17.51 | 0.6214 | 0.98 | 129.6 |
| Case | Liquid Rate (kg/s) | Gas Rate (kg/s) | Choke Pr. (MPa) | CT Speed (m/min) | Pump Pr. (MPa) | BHP (MPa) | Min Quality | Max Quality | Full Circulation Time (min) |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 2.0 | 0.8 | 2.0 | 0.1 | 24.80 | 19.81 | 0.5846 | 0.9452 | 108.2 |
| 2 | 2.0 | 0.8 | 2.0 | 1.1 | 26.52 | 24.00 | 0.5682 | 0.9408 | 121.4 |
| 3 | 2.0 | 0.8 | 2.0 | 1.5 | 27.00 | 25.08 | 0.5639 | 0.9391 | 124.5 |
| 4 | 2.0 | 0.8 | 0.62 | 1.8 | 26.45 | 23.93 | 0.5689 | 0.9798 | 117.6 |
| 5 | 2.1 | 0.89 | 0.65 | 2.0 | 27.88 | 24.33 | 0.5702 | 0.9799 | 109.4 |
| 6 | 2.15 | 0.9 | 0.63 | 2.1 | 27.61 | 24.53 | 0.5653 | 0.98 | 108.3 |
| 7 | 2.2 | 0.92 | 0.63 | 2.25 | 28.54 | 24.84 | 0.5628 | 0.98 | 106.8 |
| 8 | 2.25 | 0.93 | 0.63 | 2.35 | 28.61 | 25.02 | 0.5638 | 0.98 | 106.5 |
| Case | Leakage Rate (%) | Liquid Rate (kg/s) | Gas Rate (kg/s) | Choke Pr. (MPa) | CT Speed (m/min) | Pump Pr. (MPa) | BHP (MPa) | Min Quality | Max Quality | Min Annular Velocity (m/s) | Full Circulation Time (min) |
|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 0 | 2.1 | 0.89 | 0.65 | 2.0 | 27.88 | 24.33 | 0.5702 | 0.9799 | 0.7589 | 109.4 |
| 2 | 10 | 2.1 | 0.89 | 0.65 | 2.0 | 26.61 | 24.35 | 0.5815 | 0.9796 | 0.6829 | 120.9 |
| 3 | 16 | 2.1 | 0.89 | 0.65 | 2.0 | 25.87 | 24.37 | 0.5883 | 0.9794 | 0.6369 | 129.2 |
| 4 | 20 | 2.1 | 0.89 | 0.65 | 2.0 | 25.38 | 24.39 | 0.5829 | 0.9792 | 0.6063 | 135.4 |
| 5 | 20 | 2.2 | 0.96 | 0.65 | 2.0 | 26.13 | 24.32 | 0.5929 | 0.9799 | 0.6488 | 126.9 |
| 6 | 25 | 2.3 | 0.96 | 0.65 | 1.5 | 24.95 | 23.17 | 0.5934 | 0.9798 | 0.6377 | 129.2 |
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Share and Cite
Xu, J.; Zhang, H.; Deng, J.; Shao, Y.; Zhang, Z.; Liu, H. Research on Foam Sand-Flushing Simulation of Coiled Tubing in Shale Gas Horizontal Wells. Processes 2026, 14, 1383. https://doi.org/10.3390/pr14091383
Xu J, Zhang H, Deng J, Shao Y, Zhang Z, Liu H. Research on Foam Sand-Flushing Simulation of Coiled Tubing in Shale Gas Horizontal Wells. Processes. 2026; 14(9):1383. https://doi.org/10.3390/pr14091383
Chicago/Turabian StyleXu, Jianian, Huajian Zhang, Ju Deng, Yichen Shao, Zhenjun Zhang, and Hongli Liu. 2026. "Research on Foam Sand-Flushing Simulation of Coiled Tubing in Shale Gas Horizontal Wells" Processes 14, no. 9: 1383. https://doi.org/10.3390/pr14091383
APA StyleXu, J., Zhang, H., Deng, J., Shao, Y., Zhang, Z., & Liu, H. (2026). Research on Foam Sand-Flushing Simulation of Coiled Tubing in Shale Gas Horizontal Wells. Processes, 14(9), 1383. https://doi.org/10.3390/pr14091383

