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Related papers: Reconstructing the late accretion history of the M…

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Subsequent to the Moon's formation, late accretion to the terrestrial planets strongly modified the physical and chemical nature of silicate crusts and mantles. This alteration came in the form of melting through impacts, as well as the…

Earth and Planetary Astrophysics · Physics 2021-03-10 R. Brasser , S. J. Mojzsis , S. C. Werner , O. Abramov

Once the terrestrial planets had mostly completed their assembly, bombardment continued by planetesimals left-over from accretion. Highly siderophile element (HSE) abundances in Mars' mantle imply its late accretion supplement was 0.8 wt.%;…

Earth and Planetary Astrophysics · Physics 2017-08-02 R. Brasser , S. J. Mojzsis

According to the generally accepted scenario, the last giant impact on the Earth formed the Moon and initiated the final phase of core formation by melting the Earth's mantle. A key goal of geochemistry is to date this event, but different…

Earth and Planetary Astrophysics · Physics 2015-04-08 Seth A. Jacobson , Alessandro Morbidelli , Sean N. Raymond , David P. O'Brien , Kevin J. Walsh , David C. Rubie

Given their tendency to be incorporated into the core during differentiation, the highly-siderophile elements (HSEs) in Earth's mantle are thought to have been accreted as a `late veneer' after the end of the giant impact phase. Bottke et…

Earth and Planetary Astrophysics · Physics 2015-06-16 Sean N. Raymond , Hilke E. Schlichting , Franck Hersant , Franck Selsis

The excess abundance of highly siderophile elements (HSEs), as inferred for the terrestrial planets and the Moon, is thought to record a `late veneer' of impacts after the giant impact phase of planet formation. Estimates for total mass…

Earth and Planetary Astrophysics · Physics 2026-03-24 Richard J. Anslow , Maylis Landeau , Amy Bonsor , Jonathan Itcovitz , Oliver Shorttle

The timeline of the lunar bombardment in the first Gy of the Solar System remains unclear. Some basin-forming impacts occurred 3.9-3.7Gy ago. Many other basins formed before, but their exact ages are not precisely known. There are two…

Earth and Planetary Astrophysics · Physics 2018-01-12 A. Morbidelli , D. Nesvorny , V. Laurenz , S. Marchi , D. C. Rubie , L. Elkins-Tanton , M. Wieczorek , S. Jacobson

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…

Earth and Planetary Astrophysics · Physics 2017-10-18 H. Genda , R. Brasser , S. J. Mojzsis

It is generally accepted that silicate-metal (`rocky') planet formation relies on coagulation from a mixture of sub-Mars sized planetary embryos and (smaller) planetesimals that dynamically emerge from the evolving circum-solar disc in the…

Earth and Planetary Astrophysics · Physics 2016-10-26 R. Brasser , S. J. Mojzsis , S. C. Werner , S. Matsumura , S. Ida

Dauphas and Pourmand (2011) [Nature 473, 489--492] estimated the accretion timescale of Mars to be 1.8 $^{+0.9}_{-1.0}$ Myr from the W isotopes of martian meteorites. This timescale was derived assuming perfect metal-silicate equilibration…

Earth and Planetary Astrophysics · Physics 2015-06-12 Ryuji Morishima , Gregor Golabek , Henri Samuel

The Moon is generally thought to have formed from the debris ejected by the impact of a planet-sized object with the proto-Earth towards the end of planetary accretion. Modeling of the impact process predicts that the lunar material was…

Earth and Planetary Astrophysics · Physics 2016-04-19 Kaveh Pahlevan , Alessandro Morbidelli

The abundance of highly siderophile elements (HSEs) inferred for Mars' mantle from martian meteorites implies a Late Veneer (LV) mass addition of ~0.8 wt% with broadly chondritic composition. Late accretion to Mars by a differentiated…

Earth and Planetary Astrophysics · Physics 2019-06-24 Jason Man Yin Woo , Hidenori Genda , Ramon Brasser , Stephen J. Mojzsis

Here we critically examine the geophysical and geochemical properties of the Moon in order to identify the extent to which dynamical scenarios satisfy these observations. New joint inversions of existing lunar geophysical data (mean mass,…

Earth and Planetary Astrophysics · Physics 2025-12-22 Paolo A. Sossi , Miki Nakajima , Amir Khan

The Earth's Moon is thought to have formed by an impact between the Earth and an impactor around 4.5 billion years ago. This impact could have been so energetic that it could have mixed and homogenized the Earth's mantle. However, this view…

Earth and Planetary Astrophysics · Physics 2015-06-17 Miki Nakajima , David J. Stevenson

Impact rates in the first 500 Myr of the solar system are critical to an understanding of lunar geological history, but they have been controversial. The widely accepted, post-Apollo paradigm of early lunar impact cratering (ca. 1975-2014)…

Earth and Planetary Astrophysics · Physics 2021-01-13 William K. Hartmann , Alessandro Morbidelli

In order to test planetary accretion and differentiation scenarios, we integrated a multistage core-mantle differentiation model with N-body accretion simulations. Impacts between embryos and planetesimals result in magma ocean formation…

The Moon is traditionally thought to have coalesced from the debris ejected by a giant impact onto the early Earth. However, such models struggle to explain the similar isotopic compositions of Earth and lunar rocks at the same time as the…

Earth and Planetary Astrophysics · Physics 2022-10-06 Jacob A. Kegerreis , Sergio Ruiz-Bonilla , Vincent R. Eke , Richard J. Massey , Thomas D. Sandnes , Luís F. A. Teodoro

We use a hybrid numerical approach to simulate the formation of the Moon from an impact-generated disk, consisting of a fluid model for the disk inside the Roche limit and an N-body code to describe accretion outside the Roche limit. As the…

Earth and Planetary Astrophysics · Physics 2015-06-11 Julien Salmon , Robin M. Canup

Current lunar origin scenarios suggest that Earth's Moon may have resulted from the merger of two (or more) smaller moonlets. Dynamical studies of multiple moons find that these satellite systems are not stable, resulting in moonlet…

Earth and Planetary Astrophysics · Physics 2019-04-05 Raluca Rufu , Oded Aharonson

The multiple impact hypothesis proposes that the Moon formed through a series of smaller collisions, rather than a single giant impact. This study advances our understanding of this hypothesis, as well as moon collisions in other contexts,…

Earth and Planetary Astrophysics · Physics 2024-11-14 Uri Malamud , Hagai Perets

Late accretion is a process that strongly modulated surface geomorphic and geochemical features of Mercury. Yet, the fate of the impactors and their effects on Mercury's surface through the bombardment epoch are not clear. Using Monte-Carlo…

Earth and Planetary Astrophysics · Physics 2020-10-07 Ryuki Hyodo , Hidenori Genda , Ramon Brasser
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