Numerical Investigation into the Gas Production from Hydrate Deposit under Various Thermal Stimulation Modes in a Multi-Well System in Qilian Mountain
Abstract
:1. Introduction
2. Production Strategy and Multiple Well Design
2.1. Exploitation Methods
2.2. Five-Spot Well Design
3. Numerical Models and Simulation Approach
3.1. Numerical Simulation Code
3.2. Geometric Features and Domain Discretization Pattern
3.3. Initialization of the System
4. Results and Discussion
4.1. Production Characteristics
4.1.1. Gas Production
4.1.2. Rates of Water Production and Hydrate Decomposition
4.1.3. Gas-to-Water Ratio and Energy Ratio
4.2. Comparison of Hot Water Injection
4.3. Spatial Distributions
4.3.1. Spatial Distributions of SH and SG
4.3.2. Spatial Distribution of T
4.3.3. Spatial Distribution of SI
4.3.4. Spatial Distribution of P
4.4. Effect of Injection Modes on Hydrate Dissociation
5. Conclusions
- Gas recovery behaviors of hot water injection and electric heating combined with normal temperature water flooding are basically the same. When the mass injection is introduced, different methods have no obvious effect on the decomposition of hydrate under the condition of the same heat injection rates;
- When the water injection is applied, the seepage ability of water is strongly constrained by the low permeability of the deposit. Most of the injected water is trapped surrounding the central well. The negative effect of pressure increase is more obvious than the positive effect of thermal convection, which makes it more difficult for hydrate dissociation in the early water injection period;
- The positive effect of a higher heat stimulation rate on the hydrate mining process will be delayed using the 5S system with the hot water injection method. The pumped hot water has the ability to reduce the risk of secondary hydrate formation under a suitable injection rate, while pure electric heating could facilitate the gas recovery a little faster;
- The expansion rate of the dissociation interface near the injection well is extremely slow during the whole water injection process. The produced gas is mostly obtained with the promotion of pressure reduction from the four production wells. The injected heat can only take effect when the hot water successfully penetrates the hydrate undissociated area near the four production wells;
- Part of the gas released from hydrates is trapped in the vicinity of the four production wells. The accumulation of gas becomes more obvious with the disappearance of solid hydrates. No gas seepage is observed to occur in the OB and UB sections as the undissociated and the regenerated hydrate could hinder the transportation of fluids by dropping the effective permeability obviously in the reservoir;
- A small quantity of ice is formed near the production wells due to enthalpy consumption of the system by gas hydrate. It gradually diminishes and finally disappears under the heating effect of the injected hot water. The externally provided heat could exclude the possibility of blockage of the flow channels between the injection and production wells.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
G1 | thermal gradient within the frozen layer (°C/m) |
G2 | thermal gradient below the frozen layer (°C/m) |
H | permafrost thickness (m) |
k | intrinsic permeability (m2) |
krA | aqueous relative permeability (m2) |
krG | gas relative permeability (m2) |
kΘC | thermal conductivity (W/(m·K)) |
kΘRD | thermal conductivity of dry porous medium (W/(m·K)) |
kΘRW | thermal conductivity of fully saturated porous medium (W(m·K)) |
kΘI | thermal conductivity of ice (W/(m·K)) |
MW | cumulative mass of produced water (kg) |
P | pressure (Pa) |
PB | initial pressure at base of HBL (Pa) |
PW | pressure at the well (Pa) |
Q | total amount of injected heat (J) |
q | heat injection rate (W/m of well) |
QP | gas production rate (ST m3/day/m of well) |
QW | water production rate (kg/day/m of well) |
r | radius (m) |
rW | wellbore radius (m) |
RGW | gas-to-water ratio (ST m3 of CH4/m3 of H2O) |
S | phase saturation |
t | time (days) |
T | temperature (°C) |
T0 | permafrost ground temperature (°C) |
TB | initial temperature at the base of HBL (°C) |
VP | cumulative volume of produced CH4 (ST m3) |
W | pump work (J) |
x,y,z | cartesian coordinates (m) |
ΔHC | combustion enthalpy of produced methane (J) |
ΔlI-P | horizontal distance between injector and producer (m) |
ΔlP-P | vertical distance between two producers (m) |
Φ | porosity |
η | energy ratio |
χ | hydrate dissociation percentage |
λ | van Genuchten exponent—Table 1 |
Subscripts and Superscripts | |
0 | denotes initial state |
A | aqueous phase |
B | base of HBL |
cap | capillary |
G | gas phase |
H | solid hydrate phase |
I | solid ice phase |
irA | irreducible aqueous phase |
irG | irreducible gas |
n | permeability reduction exponent—Table 1 |
nG | gas permeability reduction exponent—Table 1 |
W | well |
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Parameter | Value |
---|---|
Thickness of hydrate-bearing area | 56.0 m |
Thickness of boundary layers | 21.5 m |
Depth of HBL underground | 235 m |
Interval of injection and producing wells ΔlI-P | 22.5 m |
Interval of two producing wells ΔlP-P | 20.0 m |
Gas composition | 100%CH4 |
Initial phase saturations in the HBL | SH = 0.40, SA = 0.60 |
Ground temperature of permafrost surface | T0 = 271.56 K |
Thermal gradient of intrapermafrost region | G1 = 0.013 °C·m−1 |
Thermal gradient of subpermafrost region | G2 = 0.028 °C·m−1 |
Intrinsic permeability of the domain | k = 1 mD |
Porosity of the media Φ | 0.30 |
Composite thermal conductivity model [35] | |
Thermal conductivity of dry porous media kΘRD | 1.0 W/(m K) |
Thermal conductivity of saturated water porous media kΘRW | 3.1 W/(m K) |
Capillary pressure model [38] | |
SirA | 0.29 [22] |
Capillary equation exponent λ | 0.45 |
Capillary pressure without solid phase P01 | 105 Pa |
Relative permeability Model [35] | |
Permeability reduction exponent n | 3.572 [22] |
Gas permeability reduction exponent nG | 3.572 |
SirG | 0.05 |
SirA | 0.30 |
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Li, B.; Ye, Y.; Zhang, T.; Wan, Q. Numerical Investigation into the Gas Production from Hydrate Deposit under Various Thermal Stimulation Modes in a Multi-Well System in Qilian Mountain. Entropy 2021, 23, 800. https://doi.org/10.3390/e23070800
Li B, Ye Y, Zhang T, Wan Q. Numerical Investigation into the Gas Production from Hydrate Deposit under Various Thermal Stimulation Modes in a Multi-Well System in Qilian Mountain. Entropy. 2021; 23(7):800. https://doi.org/10.3390/e23070800
Chicago/Turabian StyleLi, Bo, Yuan Ye, Tingting Zhang, and Qingcui Wan. 2021. "Numerical Investigation into the Gas Production from Hydrate Deposit under Various Thermal Stimulation Modes in a Multi-Well System in Qilian Mountain" Entropy 23, no. 7: 800. https://doi.org/10.3390/e23070800