HR: 1340h
AN: MR13A-0070 [Abstracts]
TI: Diffusion of Water in Silicate Melts
AU: * Newman, S
EM: sally@gps.caltech.edu
AF: California Institute of Technology, Div. of Geological and Planetary Sciences, Pasadena, CA 91125
United States
AU: Persikov, E
EM: persikov@iem.ac.ru
AF: Institute of Experimental Mineralogy of the Russian Academy of Sciences, Institutskaya Str. 4,
Chernogolovka, Mos 14232
Russian Federation
AU: Stolper, E
EM: ems@gps.caltech.edu
AF: California Institute of Technology, Div. of Geological and Planetary Sciences, Pasadena, CA 91125
United States
AU: Bukhtiyarov, P
EM: pavel@iem.ac.ru
AF: Institute of Experimental Mineralogy of the Russian Academy of Sciences, Institutskaya Str. 4,
Chernogolovka, Mos 14232
Russian Federation
AU: Zhang, Y
EM: youxue@umich.edu
AF: University of Michigan, Dept. of Geological Sciences
2534 C.C. Little Building, Ann Arbor, MI 48109-1005
United States
AB:
Diffusion of water in silicate melts and glasses has significant impact on both high temperature igneous and low temperature
alteration processes. Water diffusivity in silicates is complicated by its strong, complex dependence on composition,
including water content, which has been used to infer molecular level mechanisms of water diffusion. Very little has been
done on mafic melts, but such studies are important both for their petrologic significance and because their molecular
structures differ considerably (e.g., they are less polymerized) from more extensively studied acidic compositions.
We have measured diffusion of water in high-Al basalt, Ab50Di50, Ab75Di25 (the last two modeling
haplo-basalt to andesite), and rhyolite. Hydration (water-poor melt in contact with water vapor) and diffusion couple
experiments (two glasses with different water contents placed in contact) were run in an internally heated pressure vessel or
a rapid-quench TZM pressure vessel (1250-1300°C, 0.5-1 kbar, up to 25 minutes for intermediate to mafic compositions;
600-950°C, 0.5-1 kbar, up to 44 hours for rhyolite). Concentration profiles, obtained by FTIR spectroscopy, were fit
using water diffusion coefficients with various functional forms for the dependence on water content. The dependence of
water diffusivity on water content was also determined directly using a modified Boltzmann-Matano method for calculating
diffusion coefficients along profiles.
Key results include: (1) Hydration and diffusion couple experiments give similar results. (2) Diffusivity of water in
basaltic melts at high water contents is consistent with the single previous study. (3) The concentration dependence of
water diffusivity in these melts is consistent with previous studies and with simple models that assume water diffuses as
water molecules in equilibrium with immobile hydroxyl groups. (4) Diffusivity of water over a wide range of melt
compositions (at 1 wt.% water) correlates well with calculated melt viscosity.
DE: 1065 Major and trace element geochemistry
DE: 3600 MINERALOGY AND PETROLOGY
DE: 3630 Experimental mineralogy and petrology
SC: Mineral and Rock Physics [MR]
MN: Fall Meeting 2005