Hydrogen-Water Mixtures in Giant Planet Interiors Studied with Ab Initio Simulations
arXiv:1510.07689 · doi:10.1016/j.hedp.2014.10.005
Abstract
We study water-hydrogen mixtures under planetary interior conditions using ab initio molecular dynamics simulations. We determine the thermodynamic properties of various water-hydrogen mixing ratios at temperatures of 2000 and 6000 K for pressures of a few tens of GPa. These conditions are relevant for ice giant planets and for the outer envelope of the gas giants. We find that at 2000 K the mixture is in a molecular regime, while at 6000 K the dissociation of hydrogen and water is important and affects the thermodynamic properties. We study the structure of the liquid and analyze the radial distribution function. We provide estimates for the transport properties, diffusion and viscosity, based on autocorrelation functions. We obtained viscosity estimates of the order of a few tenths of mPa.s for the conditions under consideration. These results are relevant for dynamo simulations of ice giant planets.
5 pages, 7 figures, Proceeding of HEDLA 2014. Published in HEDP
References in corpus (4)
- A Massive Core in Jupiter Predicted From First-Principles Simulations
- A Plateau in the Planet Population Below Twice the Size of Earth
- Hydrogen-Helium Mixtures in the Interiors of Giant Planets
- Ab Initio Equation of State for Hydrogen-Helium Mixtures with Recalibration of the Giant-Planet Mass-Radius Relation