English

Thermodynamics of Element Volatility and its Application to Planetary Processes

Earth and Planetary Astrophysics 2019-02-14 v1

Abstract

Despite its importance in geological sciences, our understanding of interactions between gas and condensed phases (comprising solids and liquids) remains clouded by the fact that, often, only indirect evidence remains for their occurrence. This arises from the tendency for the vapour phase to escape from the condensed phase with which it interacts, owing to its much lower density and thus greater volume. For a gas that is sufficiently tenuous that interactions do not occur between its constituent molecules, this relationship is quantified in the ideal gas law (Clapeyron 1834): PV=nRTPV=nRT (1) where PP is the total pressure exerted by the gas, VV its volume, nn is the number of moles, RR the gas constant 8.3145 Jmol1K1Jmol^{-1}K^{-1}, Horstmann, 1873) and TT the absolute temperature. One mole of an ideal gas at 273.15 KK and 10510^5 PaPa (standard temperature and pressure for gases) has a molar volume of 22,711 cm3/molcm^3/mol, 10310^3 x greater than typical silicate liquids or minerals. As a result, vaporisation processes in nature are often informed by chemical and textural evidence remaining in the condensed phase.

Keywords

Cite

@article{arxiv.1902.05005,
  title  = {Thermodynamics of Element Volatility and its Application to Planetary Processes},
  author = {Paolo A. Sossi and Bruce Fegley},
  journal= {arXiv preprint arXiv:1902.05005},
  year   = {2019}
}

Comments

95 pages 19 figures 5 tables

R2 v1 2026-06-23T07:40:06.886Z