An early giant planet instability recorded in asteroidal meteorites

Fuente: arXiv
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Main Authors: Edwards, Graham Harper, Keller, C. Brenhin, Newton, Elisabeth R., Stewart, Cameron W.
Format: Preprint
Published: 2023
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author Edwards, Graham Harper
Keller, C. Brenhin
Newton, Elisabeth R.
Stewart, Cameron W.
author_facet Edwards, Graham Harper
Keller, C. Brenhin
Newton, Elisabeth R.
Stewart, Cameron W.
contents Giant planet migration appears widespread among planetary systems in our Galaxy. However, the timescales of this process, which reflect the underlying dynamical mechanisms, are not well constrained, even within the solar system. Since planetary migration scatters smaller bodies onto intersecting orbits, it would have resulted in an epoch of enhanced bombardment in the solar system's asteroid belt. To accurately and precisely quantify the timescales of migration, we interrogate thermochronologic data from asteroidal meteorites, which record the thermal imprint of energetic collisions. We present a database of 40K-40Ar system ages from chondrite meteorites and evaluate it with an asteroid-scale thermal code coupled to a Markov chain Monte Carlo inversion. Simulations require bombardment in order to reproduce the observed age distribution and identify a bombardment event beginning 11.3 +9.5/-6.6 million years after the Sun formed (50% credible interval). Our results associate a giant planet instability in our solar system with the dissipation of the gaseous protoplanetary disk.
format Preprint
id arxiv_https___arxiv_org_abs_2309_10906
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle An early giant planet instability recorded in asteroidal meteorites
Edwards, Graham Harper
Keller, C. Brenhin
Newton, Elisabeth R.
Stewart, Cameron W.
Earth and Planetary Astrophysics
Giant planet migration appears widespread among planetary systems in our Galaxy. However, the timescales of this process, which reflect the underlying dynamical mechanisms, are not well constrained, even within the solar system. Since planetary migration scatters smaller bodies onto intersecting orbits, it would have resulted in an epoch of enhanced bombardment in the solar system's asteroid belt. To accurately and precisely quantify the timescales of migration, we interrogate thermochronologic data from asteroidal meteorites, which record the thermal imprint of energetic collisions. We present a database of 40K-40Ar system ages from chondrite meteorites and evaluate it with an asteroid-scale thermal code coupled to a Markov chain Monte Carlo inversion. Simulations require bombardment in order to reproduce the observed age distribution and identify a bombardment event beginning 11.3 +9.5/-6.6 million years after the Sun formed (50% credible interval). Our results associate a giant planet instability in our solar system with the dissipation of the gaseous protoplanetary disk.
title An early giant planet instability recorded in asteroidal meteorites
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2309.10906