A Review on the Water Invasion Mechanism and Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs
Abstract
1. Introduction
2. Reservoir Characteristics and Water Invasion Mechanism of Carbonate Gas Reservoirs
2.1. Characteristics of Carbonate Gas Reservoirs
2.2. Microscopic Water Invasion Mechanism of Carbonate Gas Reservoirs
2.3. Macroscopic Water Invasion Mechanism of Carbonate Gas Reservoirs
3. Water Invasion Dynamics of Carbonate Bottom-Water Gas Reservoirs
3.1. Water Invasion Identification and Warning
3.1.1. Water Invasion Identification Method
3.1.2. Water Invasion Channel Type
3.1.3. Water Invasion Prediction Model
3.2. Dynamic Characteristics and Prediction of Water Invasion
3.2.1. Water Invasion Mode
3.2.2. Calculation of Water Influx
4. Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs
4.1. Gas Production by Drainage
4.2. Production by Controlling Water
4.3. Active Drainage
4.4. Medium Injection
5. Enhanced Gas Recovery Examples in Carbonate Bottom-Water Gas Reservoirs
5.1. Typical Bottom-Water Gas Reservoirs in China
5.1.1. Weiyuan Gas Field
5.1.2. Yuanba Gas Field
5.2. Other Typical Bottom-Water Gas Reservoirs
6. Conclusions
- Carbonate gas reservoirs, unlike sandstone gas reservoirs, have a variety of storage and permeable spaces, as well as a wide distribution of pore scale. These characteristics lead to various types of trapped gas caused by water invasion, which are significantly affected by the size, distribution, and density of fractures and vugs. A multi-phase flow modeling method across scales is required to coordinate the scale differences in carbonate reservoirs and accurately describe the water invasion laws for various scales and reservoir regions.
- At present, a great number of water invasion detection techniques, prediction models, and calculation methods for carbonate bottom-water gas reservoirs have been developed. However, the prediction accuracy of these methods for gas reservoirs containing fractures and vugs needs to be further improved, especially for water invasion prediction models, which are mostly based on bottom-water coning models established for homogeneous or semi-homogeneous reservoirs. Based on the extensive characterization of fractures and vugs at the reservoir scale, detailed numerical simulations of carbonate bottom-water gas reservoirs remain the primary research direction for the future.
- The keys to improving the recovery of carbonate gas reservoirs are not only traditional techniques for gas reservoir engineering (well pattern infilling, reservoir reconstruction, surface pressurization, etc.); they also include managing bottom-water invasion and implementing rescue actions following it. It can be parted into four categories of enhancing recovery methods: gas production by drainage (foam drainage, optimized tubing string, mechanical pumping, etc.), production by water control (mechanical water control, chemical water control, development parameter optimization water control), active drainage, and medium injection. To improve the recovery rate of carbonate gas reservoirs with bottom water, it is essential to consider various technical methods and develop a reasonable and effective development plan that takes into account specific geological characteristics and production conditions.
- Current practices in the development of bottom-water gas reservoirs indicate that drainage gas production is the primary technological approach for improving recovery rates in water-bearing gas reservoirs, with the application of gas drainage being the most widespread. Optimizing production parameters for water control has shown good results in the early stages of development and is another key technology for enhancing recovery rates in these types of gas reservoirs. Active drainage techniques are increasingly being applied to heterogeneous bottom-water gas reservoirs, especially in the later stages of development, where this technology may serve as a foundational method for effective gas reservoir redevelopment. Injecting CO2 at the gas–water interface in the early stages can help separate methane from water, increase reservoir pressure, and generate precipitation that blocks high-permeability zones, offering significant potential in the context of “carbon neutrality and peak carbon emissions”.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Gas Reservoir Name | Country | Depth (m) | Geological Reserves (108 m3) | Lithology | Water Energy | Reservoir Type | Reservoir Effective Thickness (m) | Permeability (mD) | Recovery (%) |
---|---|---|---|---|---|---|---|---|---|
Weiyuan | China | 3000 | 400 | Dolomite | Strong | Fracture–Vuggy Type | 90 | 0.46 | 36.7 |
Yuanba | 6800 | 1943.1 | Dolomite | Medium | Porous Type | 57.8 | 0.34 | 18 | |
Orenburg | Former Soviet Union | 1750 | 17,600 | Dolomite | Weak | Fractured–Porous Type | 89–254 | 11 | (Stable Production Stage) |
Wilburton | America | 3709 | 113 | Limestone | / | Fractured–Porous Type | 134 | 0.03 | 66 |
Beaver River | Canada | 3600 | 413.4 | Dolomite | Strong | Fractured Type | 270 | 2–200 | 78.7 |
Caroline | 3800 | 17,815 | Dolomite | Weak | Fractured Type | 40 | 100 | 12 | |
Pointed Mountain | 4115 | 226 | Dolomite | Strong | Fractured Type | 205 | 7–200 | 77 | |
B-P on the Right Bank of the Amu Darya River | Turkmenistan | 2900 | 767 | Limestone | Weak | Fractured–Porous Type | 50 | 0.1 | 39 |
Suez | Pakistan | 1000 | 2440 | Limestone | Weak | Fractured–Porous Type | 70 | 3.5 | 71 |
Water Output Characteristic | Low-Water-Producing Gas Well | Low–Middle-Water-Producing Gas Well | Serious Effusion Gas Well/Water-Flooded Shut-Off Well | ||||||
---|---|---|---|---|---|---|---|---|---|
Production by Drainage Technology | Plunger Lift | Foam Drainage | String Optimization | Wellhead Pressurization | Sucker-Rod Pump | Screw Pump | Conventional Gas Lift | Electrical Submersible Pump | Jet Pump |
Maximum Liquid Discharge Rate/m3/d | 50 | 120 | 100 | none | 100 | 100 | 500 | 1000 | 300 |
Maximum Well Depth/m | 3000 | 4500 | 4600 | none | 2500 | 1500 | 4000 | 3500 | 2800 |
Maximum Temperature/°C | none | <120 °C | none | none | none | <120 °C | none | <120 °C | none |
Packer Impact | Impact | Impact | No Impact | No Impact | No Impact | No Impact | Impact | Impact | No Impact |
Wellbore Condition | Limited | Suitable | Quite Suitable | Suitable | Limited | Limited | Suitable | Limited | Suitable |
High Gas–Liquid Ratio | Quite Suitable | Very Suitable | Very Suitable | Very Suitable | Generally Suitable | Quite Sensitive | Suitable | Suitable | Generally Suitable |
Investment Cost | Quite Low | Low | Low | Average | Average | Average | Quite Low | High | High |
Flexibility | Good | Adjustable | System Adjustable | Adjustable | Production Adjustable | Frequency Adjustable | Adjustable | Frequency Adjustable | Chock Adjustable |
Maintenance-Free Period/Year | 0.5~1 | >2 | >2 | >2 | 0.5~1.5 | >1 | >1 | 0.5~1.5 | 0.5~1.5 |
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Peng, X.; Hu, Y.; Zhang, F.; Zhang, R.; Zhao, H. A Review on the Water Invasion Mechanism and Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs. Processes 2024, 12, 2748. https://doi.org/10.3390/pr12122748
Peng X, Hu Y, Zhang F, Zhang R, Zhao H. A Review on the Water Invasion Mechanism and Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs. Processes. 2024; 12(12):2748. https://doi.org/10.3390/pr12122748
Chicago/Turabian StylePeng, Xian, Yuhan Hu, Fei Zhang, Ruihan Zhang, and Hongli Zhao. 2024. "A Review on the Water Invasion Mechanism and Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs" Processes 12, no. 12: 2748. https://doi.org/10.3390/pr12122748
APA StylePeng, X., Hu, Y., Zhang, F., Zhang, R., & Zhao, H. (2024). A Review on the Water Invasion Mechanism and Enhanced Gas Recovery Methods in Carbonate Bottom-Water Gas Reservoirs. Processes, 12(12), 2748. https://doi.org/10.3390/pr12122748