HR: 17:30h
AN: V24A-07 [Abstracts]
TI: Defining the chemical role of H2O in mantle melts: Effect of melt composition and H2O content on the activity of SiO2
AU: * Moore, G
EM: gordon.moore@asu.edu
AF: Arizona State University, Dept of Chemistry & Biochemistry, Tempe, AZ 85287-1604, United
States
AU: Roggensack, K
EM: kurt.roggensack@asu.edu
AF: Arizona State University, School of Earth and Space Exploration, Tempe, AZ 85287-1404,
United States
AB:
Quantifying the influence of volatiles (H2O, CO2) on the chemistry of mantle melts is a critical aspect of
understanding the petrogenesis of arc magmas. A significant amount of experimental work done on the effect of
H2O on the solidii of various mantle compositions, as well as on multiple saturation points of various primitive
melts, has shown that H2O stabilizes olivine with respect to orthopyroxene. Or, in other words, at constant activity
of SiO2, the presence of H2O decreases the activity coefficient of SiO2 in the melt, potentially leading to mantle
melts that have suprisingly high SiO2 contents (Carmichael, 2002). Quantification and modelling of this behavior
in hydrous silicate melts in equilibrium with the mantle have proven problematic, due mainly to a relatively small
set of experiments that allow this type of thermodynamic analysis, and because of the experimental and analytical
difficulties of dealing with hydrous high P-T samples (e.g. quench to a glass, rapid melt-solid reaction on
quench, electron beam sensitivity of resulting glass, volatile content determination, etc). A further complication in
the existing data includes co-variance of important experimental parameters (e.g. T and H2O content), making
robust statistical regression analysis difficult and potentially misleading.
We present here results of high P-T experiments conducted at a single pressure and temperature (1.0 GPa, 1200
deg C) that have the specific goal of quantifying the effect of H2O, as well as other melt components, on the
activity coefficient of SiO2 in mantle melts. Using a "sandwich" type
experiment, basaltic melts are saturated with an olivine plus orthopyroxene mineral assemblage with varying
H2O and CO2 contents. The resulting samples have their bulk solid phase and glass compositions determined
using EPMA, and the volatile content of the glass is determined by FTIR. The activity of SiO2 is then calculated
using the olivine and orthopyroxene compositions. This value is then used, along with the mole fraction of SiO2
that is measured in the glass, to calculate an activity coefficient for SiO2 in that particular melt. The results show
that for two starting compositions, H2O clearly has a strong negative effect on the activity coefficient of SiO2,
consistent with some earlier intepretations. Further work is being conducted on differing starting compositions,
as well as increasing the range of volatile contents, in order to better quantify their influence on this important
chemical parameter of mantle melts. Ultimately, these experiments will help determine whether hydrous arc
lavas, including high-Mg andesites, can be attributed to a primitive mantle origin, or whether other magmatic
processes are necessary to generate their observed bulk compositions. It will also quantify the amount of H2O
necessary to generate such magmas, giving insight into the potential H2O content present in the sub-arc mantle
source regions, and allowing a more precise estimate of volatile fluxes in volcanic arc settings.
DE: 3611 Thermodynamics (0766, 1011, 8411)
DE: 3612 Reactions and phase equilibria (1012, 8412)
DE: 3613 Subduction zone processes (1031, 3060, 8170, 8413)
DE: 3630 Experimental mineralogy and petrology
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2007 Fall Meeting