Large-Scale Physical Simulation Experiment of Water Invasion Law for Multi-Well Development in Sandstone Gas Reservoirs with Strong Water Drive
Abstract
:1. Introduction
2. Methods
2.1. Experimental Model Design
2.2. Experimental Scheme and Steps
- (1)
- The prepared physical model was loaded into a three-dimensional model holder and the confining pressure was added to 25 MPa.
- (2)
- After stabilizing the confining pressure, the physical model was slowly saturated with nitrogen (99.99%) to 20 MPa.
- (3)
- The simulated formation water (80 g/L) was loaded into the water body simulation system, pressurized to 20 MPa, and the water body multiple was set as required.
- (4)
- The formation water simulation system was connected to the physical model of saturated gas. According to the experimental scheme, the production allocation for three simulated wells was set to simulate the depletion of the gas reservoir. Through the pressure sensor, resistivity sensor, and gas flowmeter, the instantaneous gas (water) flow rate, cumulative gas (water) production, and pressure (resistivity) in different areas of the model could be recorded in real time during the experiment. Notably, the resistivity needed to be converted into saturation data, and the variation diagram of water saturation in different regions was obtained using Matlab. In the diagram, yellow represents gas, and blue represents water.
- (5)
- During the experiment, the experiment ended when the gas flow rate was not detected at the outlet of the experiment.
3. Analysis of Experimental Results
3.1. Water Invasion Simulation Experiment for Multi-Well Development of Fracture Model
3.2. Water Invasion Simulation Experiment for Multi-Well Development of Fracture–High-Permeability Zone Model
3.3. Characteristics of Residual Gas Distribution in Multi-Well Development of Sandstone Gas Reservoir with Strong Water Drive
4. Conclusions
- (1)
- Under the same production system conditions, the water invasion effect is heightened as the water body multiple increases. The strength of the edge and bottom water of the gas reservoir can be assessed by monitoring the change in the bottom hole pressure, allowing for the anticipation and prevention of potential water invasion risks.
- (2)
- In the late production stage, the water body rapidly advances along the fractures and high-permeability zones, resulting in gas wells waterflooding, lowering the ultimate recovery rate, and increasing the residual gas volume. Therefore, it is suggested that the low-position gas wells should be drained after water breakthrough to reduce the overall energy of water invasion, delay the water invasion rate in the high-position gas well area, improve the development effect, and increase the ultimate recovery rate of the gas reservoir. However, it is necessary to do an excellent job in treating produced water.
- (3)
- Under the same water body multiple conditions, shutting in the gas well immediately after water breakthrough reduces water production and increases the water-free production period but decreases the recovery rate. This production system is applicable when the water treatment capacity of the gas reservoir is poor, as it aims to maximize the water-free recovery rate and obtain the maximum economic benefits.
- (4)
- The residual gas is mainly distributed around the fracture–high-permeability zone and at the edge of the gas reservoir. It is suggested that well pattern thickening be implemented or the drainage–production ratio be increased in the residual gas enrichment area, the residual gas volume at abandonment be reduced, and the recovery rate be increased.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Experimental Scheme | Water Body Multiples (PV) | Number of Simulation Wells | Single-Well Production Allocation (mL·min−1) | Production System |
---|---|---|---|---|
Different water body multiples | 0 | 3 | 5000, 10,000, 15,000 | No shut-in after water breakthrough |
3 | 3 | |||
7 | 3 | |||
Different production systems | 7 | 3 | 5000, 10,000, 15,000 | Shut-in after water breakthrough |
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Fang, F.; He, S.; Zhuang, J.; Zhang, J.; Bian, Y. Large-Scale Physical Simulation Experiment of Water Invasion Law for Multi-Well Development in Sandstone Gas Reservoirs with Strong Water Drive. Appl. Sci. 2024, 14, 8067. https://doi.org/10.3390/app14178067
Fang F, He S, Zhuang J, Zhang J, Bian Y. Large-Scale Physical Simulation Experiment of Water Invasion Law for Multi-Well Development in Sandstone Gas Reservoirs with Strong Water Drive. Applied Sciences. 2024; 14(17):8067. https://doi.org/10.3390/app14178067
Chicago/Turabian StyleFang, Feifei, Sijie He, Jian Zhuang, Jie Zhang, and Yanan Bian. 2024. "Large-Scale Physical Simulation Experiment of Water Invasion Law for Multi-Well Development in Sandstone Gas Reservoirs with Strong Water Drive" Applied Sciences 14, no. 17: 8067. https://doi.org/10.3390/app14178067
APA StyleFang, F., He, S., Zhuang, J., Zhang, J., & Bian, Y. (2024). Large-Scale Physical Simulation Experiment of Water Invasion Law for Multi-Well Development in Sandstone Gas Reservoirs with Strong Water Drive. Applied Sciences, 14(17), 8067. https://doi.org/10.3390/app14178067