The terrestrial late veneer from core disruption of a lunar-sized impactor
arXiv:1709.07554 · doi:10.1016/j.epsl.2017.09.041
Abstract
Overabundances in highly siderophile elements (HSEs) of Earth's mantle can be explained by conveyance from a singular, immense (3000 km in a diameter) "Late Veneer" impactor of chondritic composition, subsequent to lunar formation and terrestrial core-closure. Such rocky objects of approximately lunar mass (about 0.01 M_E) ought to be differentiated, such that nearly all of their HSE payload is sequestered into iron cores. Here, we analyze the mechanical and chemical fate of the core of such a Late Veneer impactor, and trace how its HSEs are suspended - and thus pollute - the mantle. For the statistically most-likely oblique collision (about 45degree), the impactor's core elongates and thereafter disintegrates into a metallic hail of small particles (about 10 m). Some strike the orbiting Moon as sesquinary impactors, but most re-accrete to Earth as secondaries with further fragmentation. We show that a single oblique impactor provides an adequate amount of HSEs to the primordial terrestrial silicate reservoirs via oxidation of (<m-sized) metal particles with a hydrous, pre-impact, early Hadean Earth.
Accepted for publication in Earth and Planetary Science Letters, 17 pages, 4 figures
References in corpus (5)
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- Highly siderophile elements were stripped from Earth's mantle by iron sulfide segregation
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- Reduced late bombardment on rocky exoplanets around M-dwarfs
- Life on Exoplanets In the Habitable Zone of M-Dwarfs?
- Modification of the composition and density of Mercury from late accretion
- Mars in the aftermath of a colossal impact
- A new estimate for the age of highly-siderophile element retention in the lunar mantle from late accretion
- Multiverse Predictions for Habitability: Origin of Life Scenarios
- Asteroids and life: How special is the solar system?
- A multispecies pseudoadiabat for simulating condensable-rich exoplanet atmospheres