Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches
Abstract
:1. Introduction
2. Hydrate Depressurization Model
3. Verification of Mathematical Model and Numerical Solution
Core length, L (m) | 0.3 | Core diameter, D (m) | 0.05 |
Core pressure, P0 (MPa) | 3.75 | Core temperature, T0 (°C) | 2.3 |
Intrinsic porosity, Φ0 | 0.182 | Intrinsic permeability, K0 (md) | 97.98 |
Outlet pressure, Pp0 (MPa) | 2.84 | Bath temperature, Tb (°C) | 2.3 |
Hydrate saturation, Sh | 0.443 | Water saturation, Sw | 0.206 |
Gas saturation, Sg | 0.351 | Permeability reduction index, N | 10 |
4. Results and Discussion
4.1. Effect of the Depressurizing Range
4.2. Effect of the Depressurizing Rate
4.3. Effect of Combined Depressurization Approach
5. Conclusions
Nomenclature:
As | specific surface area of porous medium bearing gas hydrate |
Ageo | specific sharp geometry surface area contacting non-hydrate zone |
Cps | heat capacity of porous media |
Cpg | heat capacity of gas |
Cpw | heat capacity of water |
Cph | heat capacity of hydrate |
D | core diameter |
fe | fugacity of gas at the hydrate equilibrium pressure corresponding to the local temperature |
f | fugacity of gas under the local temperature and pressure |
hg | enthalpy of gas |
hw | enthalpy of water |
hh | enthalpy of hydrate |
hs | enthalpy of porous media |
the enthalpy change in hydrate dissociation | |
kc | thermal conductivity coefficient |
kg | thermal conductivity coefficient of gas |
kw | thermal conductivity coefficient of water |
kh | thermal conductivity coefficient of hydrate |
ks (λ) | thermal conductivity coefficient of porous media |
kd | dissociation rate constant |
k0 | intrinsic dissociation rate constant |
krg | relative permeability of gas phase |
krw | relative permeability of water phase |
K | absolute permeability |
K0 | original permeability without hydrate |
L | core length |
mass rate of gas generated by hydrate dissociation per unit volume | |
mass rate of water generated by hydrate dissociation per unit volume | |
mass rate by hydrate dissociated per unit volume | |
Mg | molecular weight of gas |
Mw | molecular weight of water |
Nh | hydrate number |
N | permeability reduction index |
Pc | capillary pressure between gas and water |
Pe | equilibrium pressure |
Pg | gas pressure |
Pw | water pressure |
P0 | core initial pressure |
Pp0 | outlet pressure |
mass rate in terms of injection/production of gas | |
mass rate in terms of injection/production of water | |
heat of hydrate decomposition unit bulk volume | |
heat from the surroundings | |
r | radial distance |
R | universal gas constant |
Sg | hydrate saturation |
Sw | water saturation |
Sh | gas saturation |
Sgr | residual gas saturation |
Swr | irreducible water saturation |
t | time |
T | system temperature |
Tb | bath temperature |
T0 | core initial temperature |
νgr | velocity of gas in r-direction |
νgx | velocity of gas in x-direction |
νwr | velocity of water in r-direction |
vwx | velocity of water in x-direction |
x | axial distance |
ρg | density of gas |
ρw | density of water |
ρr | density of porous media |
Φ | porosity |
throttling coefficient for the i phase | |
μg | viscosity of gas |
μw | viscosity of water |
Acknowledgments
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Ruan, X.; Song, Y.; Zhao, J.; Liang, H.; Yang, M.; Li, Y. Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches. Energies 2012, 5, 438-458. https://doi.org/10.3390/en5020438
Ruan X, Song Y, Zhao J, Liang H, Yang M, Li Y. Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches. Energies. 2012; 5(2):438-458. https://doi.org/10.3390/en5020438
Chicago/Turabian StyleRuan, Xuke, Yongchen Song, Jiafei Zhao, Haifeng Liang, Mingjun Yang, and Yanghui Li. 2012. "Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches" Energies 5, no. 2: 438-458. https://doi.org/10.3390/en5020438
APA StyleRuan, X., Song, Y., Zhao, J., Liang, H., Yang, M., & Li, Y. (2012). Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches. Energies, 5(2), 438-458. https://doi.org/10.3390/en5020438