HR: 1330h
AN: B12A-0766 [PDF]
TI: NaCl-H2O Phase Diagrams and Equations of State for Modeling Geo-hydrothermal Systems
AU: Bai, W
AF: Institute of Geology & Geophysics, Chinese Academy of Science, Beijing, 100016
China
AU: * Xu, W
EM: wenyue.xu@eas.gatech.edu
AF: School of Earth & Atmospheric Sciences, Georgia Institute of Technology, Atlanta, GA 30332 United States
AU: Lowell, R P
AF: School of Earth & Atmospheric Sciences, Georgia Institute of Technology, Atlanta, GA 30332 United States
AB:
Fluids in seafloor hydrothermal systems and many underground geothermal systems contain certain amount of salts, which have a
significant effect on the dynamics of fluid flow and transport processes. Equations of state and phase diagrams of the
NaCl-H2O system are needed to determine phase equilibrium and thermodynamic properties of fluids in modeling high-temperature
geo-hydrothermal systems, particularly those near mid-ocean ridges. Extant equations of state and phase diagrams in the
literature are either applicable to pressure/temperature ranges that are not sufficient to cover those of seafloor
hydrothermal systems, or have significant flaws that render successful modeling impractical. To carry out our research
projects on modeling seafloor hydrothermal systems, we have developed phase diagrams as described below.
Pressure-temperature-salinity and pressure-temperature-density phase boundaries containing the liquid-vapor region of
NaCl-H2O system for temperatures from 300低 to 801低 (the melting point of halite) and pressures from 0.1MPa to above 200MPa
were first constructed based on Anderko and Pitzer's [1993] method. These boundaries were then extrapolated to include
temperature ranges of 100低-300低 to the low end and 801低-1200低 to the high end according to data along the critical line
and of the saturated phases on the liquid-vapor-halite three-phase boundary in the low- and high-temperature ranges,
respectively. Based on the assumption of NaCl-H2O solution as a water-slat assembly with linear contributions from water and
salt, the pressure-temperature-enthalpy phase boundary was formed on the basis of pressure, density and salinity data along
the boundary.
DE: 3015 Heat flow (benthic) and hydrothermal processes
DE: 3035 Midocean ridge processes
DE: 3919 Equations of state
DE: 4271 Physical and chemical properties of seawater
DE: 8135 Hydrothermal systems (8424)
SC: Biogeosciences [B]
MN: 2003 Fall Meeting