Pith. sign in

Multiple Impact Origin for the Moon

1 Pith paper cite this work, alongside 140 external citations. Polarity classification is still indexing.

1 Pith paper citing it
140 external citations · Pith
abstract

The hypothesis of lunar origin by a single giant impact can explain some aspects of the Earth-Moon system. However, it is difficult to reconcile giant impact models with the compositional similarity of the Earth and Moon without violating angular momentum constraints. Furthermore, successful giant impact scenarios require very specific conditions such that they have a low probability of occurring. Here we present numerical simulations suggesting that the Moon could instead be the product of a succession of a variety of smaller collisions. In this scenario, each collision forms a debris disk around the proto-Earth that then accretes to form a moonlet. The moonlets tidally advance outward, and may coalesce to form the Moon. We find that sub-lunar moonlets are a common result of impacts expected onto the proto-Earth in the early solar system and find that the planetary rotation is limited by impact angular momentum drain. We conclude that, assuming efficient merger of moonlets, a multiple impact scenario can account for the formation of the Earth-Moon system with its present properties.

fields

astro-ph.EP 1

years

2026 1

verdicts

UNVERDICTED 1

representative citing papers

Can giant impacts be directly detected in other star systems?

astro-ph.EP · 2026-06-24 · unverdicted · novelty 5.0

Simulations of giant impacts between 0.2-4 Earth-mass planets yield post-impact luminosities of 5e-5 to 0.1 L_sun cooling over 1-2000 days, predicting 0-14 detections in Gaia DR4 and a comparable number in LSST.

citing papers explorer

Showing 1 of 1 citing paper.

  • Can giant impacts be directly detected in other star systems? astro-ph.EP · 2026-06-24 · unverdicted · none · ref 97 · internal anchor

    Simulations of giant impacts between 0.2-4 Earth-mass planets yield post-impact luminosities of 5e-5 to 0.1 L_sun cooling over 1-2000 days, predicting 0-14 detections in Gaia DR4 and a comparable number in LSST.