The effects of a deep mantle endothermic phase change on the structure of thermal convection in silicate planets
- 25 June 1995
- journal article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research
- Vol. 100 (E6) , 11719-11728
- https://doi.org/10.1029/95je00710
Abstract
Previous studies of the effects of silicate phase transitions on mantle convection have tended to use numerical models in which the phase transitions have the same depths as found in the Earth's mantle, or in which a single transition is placed at a depth equal to half the layer thickness. This study presents a systematic investigation designed to examine the effects of an endothermic phase transition near the core‐mantle boundary of terrestrial type planets. The results indicate that a deep mantle endothermic phase change may trap the lower thermal boundary layer, allowing only one upwelling to penetrate the phase transition. In these situations the deep endothermic phase change excites a dipolar convection pattern. This mechanism may have a role in the degree one power observed in the distribution of the Earth's hotspots and the development of the Martian crustal dichotomy.Keywords
This publication has 26 references indexed in Scilit:
- Segregation of subducted oceanic crust in the convecting mantleJournal of Geophysical Research, 1994
- Three-Dimensional Instabilities of Mantle Convection with Multiple Phase TransitionsScience, 1993
- Generation of long wavelength heterogeneity in the mantle by the dynamic interaction between plates and convectionGeophysical Research Letters, 1991
- Geodetic constraints on the composition of MarsJournal of Geophysical Research, 1990
- Postspinel transformations in the system Mg2SiO4‐Fe2SiO4 and some geophysical implicationsJournal of Geophysical Research, 1989
- Dynamical influences from thermal‐chemical instabilities at the core‐mantle boundaryGeophysical Research Letters, 1989
- Global coupling of Earth surface topography with hotspots, geoid and mantle heterogeneitiesNature, 1989
- Large impact basins and the mega‐impact origin for the crustal dichotomy on MarsGeophysical Research Letters, 1988
- Layered convection induced by phase transitionsJournal of Geophysical Research, 1985
- Computational design for long-term numerical integration of the equations of fluid motion: Two-dimensional incompressible flow. Part IJournal of Computational Physics, 1966