Temporal alteration of fracture permeability in granite under hydrothermal conditions and its interpretation by coupled chemo-mechanical model
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Shinichiro Nakashima | Kiyoshi Kishida | Dae Sung Lee | Naoki Kinoshita | K. Kishida | H. Yasuhara | S. Nakashima | H. Ohfuji | Hiroaki Ohfuji | N. Kinoshita | Hide Yasuhara | D. Lee
[1] Y. Guéguen,et al. Modeling of porosity loss during compaction and cementation of sandstones , 1996 .
[2] B. Lawn. Fracture of Brittle Solids by Brian Lawn , 1993 .
[3] R. Glass,et al. Experimental observations of fracture dissolution: The role of Peclet number on evolving aperture variability , 2003 .
[4] P. Aagaard,et al. Thermodynamic and kinetic constraints on reaction rates among minerals and aqueous solutions. II. Rate constants, effective surface area, and the hydrolysis of feldspar , 1984 .
[5] Xia-Ting Feng,et al. Effects of water chemistry on microcracking and compressive strength of granite , 2001 .
[6] Yasuhiro Mitani,et al. Evolution of fracture permeability through fluid–rock reaction under hydrothermal conditions , 2006 .
[7] C. Scholz. The Mechanics of Earthquakes and Faulting , 1990 .
[8] T. Tsuruta,et al. Zoning of rock facies and chemical composition in the Toki granitic body, Central Japan , 2010 .
[9] Katsuhiko Kaneko,et al. Study of subcritical crack growth in andesite using the Double Torsion test , 2005 .
[10] W. Heidug. Intergranular solid‐fluid phase transformations under stress: The effect of surface forces , 1995 .
[11] A. Revil. Pervasive pressure‐solution transfer: A poro‐visco‐plastic model , 1999 .
[12] R. Fournier,et al. The solubility of amorphous silica in water at high temperatures and high pressures , 1977 .
[13] B. Vinther,et al. NAO signal recorded in the stable isotopes of Greenland ice cores , 2003 .
[14] François Renard,et al. Pressure solution in sandstones: influence of clays and dependence on temperature and stress , 1997 .
[15] D. Elsworth,et al. Evolution of permeability in a natural fracture: Significant role of pressure solution , 2004 .
[16] J. Tester,et al. Correlating quartz dissolution kinetics in pure water from 25 to 625°C , 1994 .
[17] A. Gangi,et al. Variation of whole and fractured porous rock permeability with confining pressure , 1978 .
[18] J. Acker,et al. The influence of pH on biotite dissolution and alteration kinetics at low temperature , 1992 .
[19] J. S. Y. Wang,et al. Validity of cubic law for fluid flow in a deformable rock fracture. Technical information report No. 23 , 1979 .
[20] R. Glass,et al. Measurement of fracture aperture fields using transmitted light: An evaluation of measurement errors and their influence on simulations of flow and transport through a single fracture , 1999 .
[21] Derek Elsworth,et al. Laboratory assessment of the equivalent apertures of a rock fracture , 1993 .
[22] P. K. Weyl. Pressure solution and the force of crystallization: a phenomenological theory , 1959 .
[23] F. Lehner. A model for intergranular pressure solution in open systems , 1995 .
[24] P. Robin. Pressure solution at grain-to-grain contacts , 1978 .
[25] P. Meredith,et al. Stress corrosion cracking of quartz: A note on the influence of chemical environment , 1981 .
[26] A. Grader,et al. Spontaneous switching of permeability changes in a limestone fracture with net dissolution , 2002 .
[27] F. Chester,et al. Subcritical compaction and yielding of granular quartz sand , 2003 .
[28] Phillip M. Halleck,et al. Permeability reduction of a natural fracture under net dissolution by hydrothermal fluids , 2003 .
[29] Patricia M. Dove,et al. Geochemical controls on the kinetics of quartz fracture at subcritical tensile stresses , 1995 .
[30] F. Chester,et al. Mechanisms of compaction of quartz sand at diagenetic conditions , 2004 .
[31] Thomas A. Dewers,et al. Rate laws for water‐assisted compaction and stress‐induced water‐rock interaction in sandstones , 1995 .
[32] Lei Chou,et al. Study of the weathering of albite at room temperature and pressure with a fluidized bed reactor , 1984 .
[33] J. Gratier. Experimental pressure solution of Halite by an indenter technique , 1993 .
[34] E. Burton,et al. Direct observation of reactive flow in a single fracture , 2001 .
[35] P. Schutjens,et al. Experimental compaction of quartz sand at low effective stress and temperature conditions , 1991, Journal of the Geological Society.
[36] E. Oelkers,et al. Experimental study of anorthite dissolution and the relative mechanism of feldspar hydrolysis , 1995 .
[37] B. Atkinson. Subcritical crack growth in geological materials , 1984 .
[38] Rishi Raj,et al. Creep in polycrystalline aggregates by matter transport through a liquid phase , 1982 .
[39] David J. Brush,et al. Fluid flow in synthetic rough‐walled fractures: Navier‐Stokes, Stokes, and local cubic law simulations , 2003 .
[40] H. Helgeson,et al. Thermodynamic and kinetic constraints on reaction rates among minerals and aqueous solutions; IV, Retrieval of rate constants and activation parameters for the hydrolysis of pyroxene, wollastonite, olivine, andalusite, quartz, and nepheline , 1989 .
[41] D. Elsworth,et al. Compaction of a Rock Fracture Moderated by Competing Roles of Stress Corrosion and Pressure Solution , 2008 .
[42] D. Elsworth,et al. A mechanistic model for compaction of granular aggregates moderated by pressure solution , 2003 .
[43] Roland Hellmann,et al. The albite-water system: Part I. The kinetics of dissolution as a function of pH at 100, 200 and 300°C , 1994 .
[44] A. Grader,et al. Spontaneous Switching between Permeability Enhancement and Degradation in Fractures in Carbonate: Lumped Parameter Representation of Mechanically- and Chemically-Mediated Dissolution , 2006 .
[45] E. Rutter,et al. A Discussion on natural strain and geological structure - The kinetics of rock deformation by pressure solution , 1976, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.