Formation of natural gas hydrates in marine sediments 2. Thermodynamic calculations of stability conditions in porous sediments

被引:290
作者
Henry, P
Thomas, M
Ben Clennell, M
机构
[1] Ecole Normale Super, Geol Lab, CNRS, UMR 8538, F-75231 Paris, France
[2] IFP Energies Nouvelles, F-92852 Rueil Malmaison, France
[3] Univ Leeds, Dept Earth Sci, Leeds LS2 9JT, W Yorkshire, England
关键词
D O I
10.1029/1999JB900167
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A thermodynamic model for hydrate formation is used to compute the solubility of methane in pore water in equilibrium with gaseous methane or methane hydrate or both. Free energy of water in the hydrate phase and of methane in gas bubbles are corrected to account for salt effects and capillary effects. Capillary effects increase the solubility of methane in fluid in equilibrium with either hydrate or gas. Natural sediments have a broad distribution of pore sizes, and the effective pore size for capillary effects is a function of the fraction of the pore space filled by hydrate or gas (phase fraction). The equilibrium conditions for hydrate+water+gas equilibrium thus depend on hydrate and gas phase fraction. Data acquired on Blake Ridge during Ocean Drilling Program Leg 164 show that the base of the hydrate stability there is shifted by -2 degrees C or more with respect to the expected temperature and this shift has been attributed to capillary effects. We show that this explanation would require a very small effective pore radius (20 nm at 30 MPa). Mercury porosimetry indicates that the percolation threshold for Blake Ridge silty claystone is reached at 20-25% phase fraction and corresponds to a 100 nm pore radius. Hydrate and gas phase fraction determined with several independent methods are all lower than this percolation threshold, implying that gas and hydrate fill pores larger than 100 nm. We conclude that additional inhibition factors other than pore size effects must be involved to explain the -2 degrees C bottom-simulating reflector (BSR) shift as an equilibrium phenomenon. Capillary effects may, however, explain other observations such as large variations of the gas hydrate content in the sediment with lithology and porosity and the distribution of hydrate between interstitial hydrate and segregated masses. Capillary effects should also oppose the migration of gas bubbles when gas phase fraction is less than the percolation threshold and make unnecessary the assumption of a hydrate seal impermeable to fluids. Alternatively, we can go some way to explaining the offset position of the BSR by relaxing the assumption that the system is in thermodynamic equilibrium. Nucleation kinetics of hydrate and/or free gas bubbles may be inhibited by confinement of the methane-bearing fluid in small pores. Equilibration may also be limited by possible rates of diffusional transport of gas, water, and salt components or be perturbed by significant flows of fluid or heat through the sediments.
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页码:23005 / 23022
页数:18
相关论文
共 70 条
[11]  
Dickens GR, 1997, GEOLOGY, V25, P259, DOI 10.1130/0091-7613(1997)025<0259:ABOGIT>2.3.CO
[12]  
2
[13]   Direct measurement of in situ methane quantities in a large gas-hydrate reservoir [J].
Dickens, GR ;
Paull, CK ;
Wallace, P .
NATURE, 1997, 385 (6615) :426-428
[14]   Methane hydrate stability in pore water: A simple theoretical approach for geophysical applications [J].
Dickens, GR ;
QuinbyHunt, MS .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1997, 102 (B1) :773-783
[15]   THE PREDICTION OF METHANE SOLUBILITY IN NATURAL-WATERS TO HIGH IONIC-STRENGTH FROM O-DEGREES-C TO 250-DEGREES-C AND FROM 0 TO 1600 BAR [J].
DUAN, ZH ;
MOLLER, N ;
GREENBERG, J ;
WEARE, JH .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1992, 56 (04) :1451-1460
[16]  
EMSCHWILLER G, 1961, CHIMIE PHYSIQUE, V2, P791
[17]   PREDICTION OF GAS HYDRATE FORMATION CONDITIONS IN AQUEOUS-ELECTROLYTE SOLUTIONS [J].
ENGLEZOS, P ;
BISHNOI, PR .
AICHE JOURNAL, 1988, 34 (10) :1718-1721
[18]   THERMODYNAMICS OF FROST DAMAGE TO POROUS SOLIDS [J].
EVERETT, DH .
TRANSACTIONS OF THE FARADAY SOCIETY, 1961, 57 (09) :1541-&
[19]  
Ginsburg G. D., 1998, SUBMARINE GAS HYDRAT
[20]   Methane migration within the submarine gas-hydrate stability zone under deep-water conditions [J].
Ginsburg, GD ;
Soloviev, VA .
MARINE GEOLOGY, 1997, 137 (1-2) :49-57