Numerical Simulation of a Class I Gas Hydrate Reservoir Depressurized by a Fishbone Well
Abstract
:1. Introduction
2. Mathematical Model and Validation
2.1. Mathematical Model
2.2. Validation
3. Numerical Models and Simulation Approach
3.1. PEBI Unstructured Grid Generation
3.2. Modeling of Class I Gas Hydrate Reservoirs
3.3. Results and Discussions
3.3.1. Evolution of the Gas and Water Productions
3.3.2. Evolution of the Hydrate Reserves
3.3.3. Evolution of the Physical Field
4. Conclusions
- (1)
- The PEBI unstructured grid can ensure the orthogonality of the grids as much as possible while adapting to the complex shape of the fishbone well. Compared with the conventional Cartesian grid system and corner grid system, the PEBI unstructured grid can effectively avoid the grid distortion caused by complex well or complex boundaries and ensure the convergence of the simulation;
- (2)
- The multi-branch fishbone well can effectively increase the contact area between wellbore and reservoir, promote the rapid production of primary water and the rapid reduction of reservoir pressure in the initial stage of depressurization, and promote the decomposition of the hydrate and the upward return of free gas in gas and mixed layers. Compared with a single horizontal well, the cumulative gas production of the six-branch fishbone well increases by 59.3%. Therefore, using the multi-branch fishbone well depressurization to develop the Class I gas hydrate reservoir can effectively improve the productivity and development effect;
- (3)
- The more branches of the fishbone well, the higher the rate of hydrate decomposition. However, due to the large amount of heat absorption caused by hydrate decomposition, the hydrate decomposition rate decreases rapidly after the heat energy in the reservoir is consumed in the late stage of development. The simulation results show that the hydrate decomposition rate of all schemes is lower than 50%. Therefore, in the later stage of depressurization development, the combined development method of heat injection and depressurization is expected to further provide sufficient heat energy for hydrate decomposition and thus promote the decomposition of the hydrate.
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Value | Parameters | Value |
---|---|---|---|
Hydrate layer water saturation | 0.69 | Gas layer permeability/mD | 6.8 |
Hydrate layer hydrate saturation | 0.31 | Hydrate layer average temperature/°C | 12.73 |
Mixed layer water saturation | 0.751 | Hydrate layer average pressure/MPa | 12.92 |
Mixed layer gas saturation | 0.132 | Mixed layer average temperature/°C | 14.31 |
Mixed layer hydrate saturation | 0.117 | Mixed layer average pressure/MPa | 13.98 |
Gas layer water saturation | 0.927 | Gas layer average temperature/°C | 15.84 |
Gas layer gas saturation | 0.073 | Gas layer average pressure/MPa | 14.89 |
Salt mass fraction | 0.0305 | SirG | 0.05 |
Hydrate layer porosity | 0.373 | Ng | 2.0 |
Mixed layer porosity | 0.346 | SirW | 0.3 |
Gas layer porosity | 0.347 | Nw | 2.0 |
Hydrate layer permeability /mD | 2.38 | Pressure gradient/(MPa/100 m) | 1.0 |
Mixed layer permeability /mD | 6.63 | Temperature gradient/(°C/100 m) | 4.5 |
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He, J. Numerical Simulation of a Class I Gas Hydrate Reservoir Depressurized by a Fishbone Well. Processes 2023, 11, 771. https://doi.org/10.3390/pr11030771
He J. Numerical Simulation of a Class I Gas Hydrate Reservoir Depressurized by a Fishbone Well. Processes. 2023; 11(3):771. https://doi.org/10.3390/pr11030771
Chicago/Turabian StyleHe, Jiayuan. 2023. "Numerical Simulation of a Class I Gas Hydrate Reservoir Depressurized by a Fishbone Well" Processes 11, no. 3: 771. https://doi.org/10.3390/pr11030771
APA StyleHe, J. (2023). Numerical Simulation of a Class I Gas Hydrate Reservoir Depressurized by a Fishbone Well. Processes, 11(3), 771. https://doi.org/10.3390/pr11030771