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Components, rocks, soil models

Fig. 7. Mixing diagram from the two-component model of Wanke et al,6 for the Apollo 12 soils (12037, 12070, 12042, 12033) und breccias (12034, 12073). Note that the element lines and the compositions (position along the x-axis) were calculated via least-squares fit from the data for basaltic rocks, Apollo 12 soils and breccias only. The data for KREEP and the soil sample from the Fra Mauro formation (14) were not used for the computation of the element lines. The position of these samples along the x-axis was calculated via the previously determined element lines. Finally, the distance between the magmatic rocks and KREEP was divided into 100 units... Fig. 7. Mixing diagram from the two-component model of Wanke et al,6 for the Apollo 12 soils (12037, 12070, 12042, 12033) und breccias (12034, 12073). Note that the element lines and the compositions (position along the x-axis) were calculated via least-squares fit from the data for basaltic rocks, Apollo 12 soils and breccias only. The data for KREEP and the soil sample from the Fra Mauro formation (14) were not used for the computation of the element lines. The position of these samples along the x-axis was calculated via the previously determined element lines. Finally, the distance between the magmatic rocks and KREEP was divided into 100 units...
These programs are able to model the geological systems soil/rock-aqueous solution systems that is the concentration and distribution of the thermodynamically stable species can be determined based on the total concentrations of the components and the parameters just mentioned. In addition, the programs can also be used to estimate thermodynamic equilibrium constants and/or surface parameters from the concentrations of the species determined through experiments. Thermodynamic equilibrium constants can be found in tables (Pourbaix 1966) or databases (e.g., Common Thermodynamic Database Project, CHESS, MINTEQ, Visual MINTEQ, NEA Thermodynamical Data Base Project (TDB), JESS, Thermo-Calc Databases). Some programs (e.g., NETPATH, PHREEQC) also consider the flowing parameters. [Pg.35]

In this chapter, the relationship of geological origins and interfacial properties of bentonite clay will be reviewed first. Then we will discuss the migration of water-soluble substances in rocks and soil, and the effect of sorption on the migration. A linear model will be derived by which the quantity of ion sorbed on rocks can be estimated when the mineral composition and sorption parameters of the mineral components are known. Surface acid-base properties of soils will be discussed, and the sorption of an anion (cyanide ion) will be shown on different soils and sediments. [Pg.169]

In this book we considered mass transfer and elemental migration between the atmosphere, hydrosphere, soils, rocks, biosphere and humans in earth s surface environment on the basis of earth system sciences. In Chaps. 2, 3, and 4, fundamental theories (thermodynamics, kinetics, coupling model such as dissolution kinetics-fluid flow modeling, etc.) of mass transfer mechanisms (dissolution, precipitation, diffusion, fluid flow) in water-rock interaction of elements in chemical weathering, formation of hydrothermal ore deposits, hydrothermal alteration, formation of ground water quality, seawater chemistry. However, more complicated geochemical models (multi-components, multi-phases coupled reaction-fluid flow-diffusion model) and phenomenon (autocatalysis, chemical oscillation, etc.) are not considered. [Pg.216]


See other pages where Components, rocks, soil models is mentioned: [Pg.89]    [Pg.598]    [Pg.83]    [Pg.4732]    [Pg.242]    [Pg.164]    [Pg.183]    [Pg.178]    [Pg.594]    [Pg.1140]    [Pg.191]    [Pg.103]    [Pg.203]   
See also in sourсe #XX -- [ Pg.35 , Pg.36 , Pg.37 , Pg.38 ]




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