Sound velocity of Fe-S liquids at high pressure: Implications for the Moon's molten outer core
Journal Article
·
· Earth Planet. Sci. Lett.
- Case Western
Sound velocities of Fe and Fe–S liquids were determined by combining the ultrasonic measurements and synchrotron X-ray techniques under high pressure–temperature conditions from 1 to 8 GPa and 1573 K to 1973 K. Four different liquid compositions were studied including Fe, Fe–10 wt% S, Fe–20 wt% S, and Fe–27 wt% S. Our data show that the velocity of Fe-rich liquids increases upon compression and decreases with increasing sulfur content, whereas temperature has negligible effect on the velocity of Fe–S liquids. The sound velocity data were combined with ambient-pressure densities to fit the Murnaghan equation of state (EOS). Compared to the lunar seismic model, our velocity data constrain the sulfur content at 4±3 wt%, indicating a significantly denser (6.5±0.5 g/cm3) and hotter (1870-70+100 K) outer core than previously estimated. A new lunar structure model incorporating available geophysical observations points to a smaller core radius. Our model suggests a top–down solidification scenario for the evolution of the lunar core. Such “iron snow” process may have been an important mechanism for the growth of the inner core.
- Research Organization:
- Advanced Photon Source (APS), Argonne National Laboratory (ANL), Argonne, IL (US)
- Sponsoring Organization:
- NSF
- OSTI ID:
- 1129241
- Journal Information:
- Earth Planet. Sci. Lett., Journal Name: Earth Planet. Sci. Lett. Journal Issue: 06, 2014 Vol. 396
- Country of Publication:
- United States
- Language:
- ENGLISH
Similar Records
Density and Sound Velocity of Iron-Sulfur Alloying Liquids at High Pressures and Implications to Planetary Cores
Density of Fe-Ni-C Liquids at High Pressures and Implications for Liquid Cores of Earth and the Moon
Phase Transitions and Thermal Equation of State of Fe‐9wt.%Si Applied to the Moon and Mercury
Conference
·
Mon Apr 30 00:00:00 EDT 2012
·
OSTI ID:1037468
Density of Fe-Ni-C Liquids at High Pressures and Implications for Liquid Cores of Earth and the Moon
Journal Article
·
Thu Feb 11 19:00:00 EST 2021
· Journal of Geophysical Research. Solid Earth
·
OSTI ID:1774188
Phase Transitions and Thermal Equation of State of Fe‐9wt.%Si Applied to the Moon and Mercury
Journal Article
·
Mon Oct 28 20:00:00 EDT 2024
· Journal of Geophysical Research. Planets
·
OSTI ID:2555887