P011-01
Magma Ocean Differentiation Regime in the Earliest Formed Rocky Bodies Inferred from Volatile Abundances in Iron Meteorites
Abstract:
Here we present a thermodynamic modelling framework to track C and N fractionation between atmosphere, MO and core reservoirs as a function of the composition of their accreting materials and sizes of the parent bodies. For external MOs, C and N in the MOs were calculated based on their vapor pressure-induced solubility in the silicate melts while the exchange between MOs and core forming alloy melts for external as well as internal MOs were calculated using alloy-silicate melt partition coefficients. For bodies with external MOs, 89-99% of the accreted C and N inventories reside in the atmosphere rsulting from MO degassing, 1-11% in their cores, and less than 1% C-N in their silicate reservoirs. Whereas for bodies with internal MOs, the cores are the major C and N bearing reservoir (90-99%). The relative prevalence of external versus internal magma ocean regimes can be used to explain the C-N inventories of different groups of iron meteroites. Consequently, C-N inventories of larger planets were likely affected by the relative prevalence of feedstock rocky bodies in the Solar System that underwent end-member protoplanetary differentiation regimes.