4.4 Article Proceedings Paper

Volumetric properties of magnesium silicate glasses and supercooled liquid at high pressure by X-ray microtomography

期刊

PHYSICS OF THE EARTH AND PLANETARY INTERIORS
卷 174, 期 1-4, 页码 292-301

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.pepi.2008.10.023

关键词

Computed tomography; High pressure; Silicate glass; Supercooled liquid; Density-volume

资金

  1. Directorate For Geosciences
  2. Division Of Earth Sciences [0711057, 1214376, 0711599, GRANTS:14037351] Funding Source: National Science Foundation

向作者/读者索取更多资源

The volumetric properties of silicate glasses and supercooled liquid are examined at high pressures and temperatures using X-ray computed tomography (CT) and absorption. The high pressure X-ray microtomography (HPXMT) system at the Advanced Photon Source, Argonne National Laboratory (GeoSoilEnvironCARS 13-BM-D beamline) consists of two opposing anvils compressed within an X-ray-transparent containment ring supported by thrust bearings and loaded using a 250-ton hydraulic press. This system permits the pressure cell to rotate under the load, while collecting radiographs through at least 180 degrees of rotation. The 13-BM-D beamline permits convenient switching between monochromatic radiation required for radiography and polychromatic radiation for pressure determination by energy dispersive diffraction. We report initial results on several refractory magnesium silicate glasses synthesized by levitation laser heating. Volume changes during room temperature compression of Mg-silicate glasses with 33 mol% and 38 mol% SiO2 up to 11.5 GPa give an isothermal bulk moduli of 93-100 GPa for a K' of 1. These values are consistent with ultrasonic measurements of more silica-rich glasses. The volumetric properties of amorphous MgSiO3 at 2 GPa were examined during annealing up to 1000 degrees C. We consider the consequences of heating through the glass transition and the implications for thermal expansivity of supercooled liquids at high pressure. Our results illustrate the capabilities of HPXMT for studies of refractory glasses and liquids at high pressure and offer strategies for future studies of liquid densities within the melting interval for magmas in planet interiors. (C) 2008 Elsevier B.V. All rights reserved.

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