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The formation of the Earth's core is a consequence of planetary accretion and processes in the Earth's interior. The mechanical process of planetary differentiation is likely to occur in large, if not global, magma oceans created by the…

Earth and Planetary Astrophysics · Physics 2016-12-14 David C. Rubie , Seth A. Jacobson

We improved the algorithm presented in Rubie et al. (2015) to model the chemical evolution of Earth driven by iron/silicate differentiation during the planet's accretion. The pressure at which the equilibration occurs during a giant impact…

Earth and Planetary Astrophysics · Physics 2023-08-10 K. I. Dale , D. C. Rubie , M. Nakajima , S. Jacobson , G. Nathan , G. J. Golabek , S. Cambioni , A. 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…

We investigate the melt production of planetary impacts as a function of planet size ($R/R_\mathrm{Earth}$=0.1-1.5), impactor size ($L$=1-1000 km), and core size ratio ($R_\mathrm{core}/R$=0.2-0.8) using a combination of parameterized…

Earth and Planetary Astrophysics · Physics 2025-06-24 Lukas Manske , Thomas Ruedas , Ana-Catalina Plesa , Philipp Baumeister , Nicola Tosi , Natalia Artemieva , Kai Wünnemann

Pairwise collisions between terrestrial embryos are the dominant means of accretion during the last stage of planet formation. Hence, their realistic treatment in N-body studies is critical to accurately model the formation of terrestrial…

During planet formation, numerous small impacting bodies result in cratering impacts on large target bodies. A fraction of the target surface is eroded, while a fraction of the impactor material accretes onto the surface. These fractions…

Earth and Planetary Astrophysics · Physics 2021-06-02 Ryuki Hyodo , Hidenori Genda

The final stage of terrestrial planet formation is known as the giant impact stage where protoplanets collide with one another to form planets. So far this stage has been mainly investigated by N-body simulations with an assumption of…

Earth and Planetary Astrophysics · Physics 2015-05-18 Eiichiro Kokubo , Hidenori Genda

Much of the Earth was built by high-energy impacts of planetesimals and embryos, many of these impactors already differentiated, with metallic cores of their own. Geochemical data provide critical information on the timing of accretion and…

Geophysics · Physics 2014-03-05 Renaud Deguen , Maylis Landeau , Peter Olson

The late stages of terrestrial planet formation are dominated by giant impacts that collectively influence the growth, composition and habitability of any planets that form. Hitherto, numerical models designed to explore these late stage…

Earth and Planetary Astrophysics · Physics 2016-04-27 Elisa V. Quintana , Thomas Barclay , William Borucki , Jason F. Rowe , John E. Chambers

Numerical simulations of the stochastic end stage of planet formation typically begin with a population of embryos and planetesimals that grow into planets by merging. We analyzed the impact parameters of collisions leading to the growth of…

Earth and Planetary Astrophysics · Physics 2012-05-04 S. T. Stewart , Z. M. Leinhardt

During the formation of rocky planets, the surface environments of growing protoplanets were dramatically different from those of present-day planets. The release of gravitational energy during accretion would have maintained a molten…

Earth and Planetary Astrophysics · Physics 2025-09-17 Haruya Maeda , Takanori Sasaki

Giant impacts dominate the late stages of accretion of rocky planets. They contribute to the heating, melting, and sometimes vaporizing of the bodies involved in the impacts. Due to fractionation during melting and vaporization,…

Earth and Planetary Astrophysics · Physics 2025-02-10 Adrien Saurety , Razvan Caracas , Sean N. Raymond

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

In the standard scenario of planet formation, terrestrial planets, ice giants, and cores of gas giants are formed by the accumulation of planetesimals. However, there are few N-body simulation studies of planetesimal accretion that…

Earth and Planetary Astrophysics · Physics 2021-11-17 Takashi Shibata , Eiichiro Kokubo , Natsuki Hosono

The chemical compositions of Earth's core and mantle provide insight into the processes that led to their formation. N-body simulations, on the other hand, generally do not contain chemical information, and seek to only reproduce the masses…

We explore the heating and differentiation of rocky planets that grow by rapid pebble accretion. Our terrestrial planets grow outside of the ice line and initially accrete 28\% water ice by mass. The accretion of water stops after the…

Earth and Planetary Astrophysics · Physics 2023-03-15 Anders Johansen , Thomas Ronnet , Martin Schiller , Zhengbin Deng , Martin Bizzarro

Earth is depleted in volatile elements relative to chondritic meteorites, its possible building blocks. The extent of this depletion increases with decreasing condensation temperature, and is approximated by a cumulative normal…

Earth and Planetary Astrophysics · Physics 2022-07-19 Paolo A. Sossi , Ingo L. Stotz , Seth A. Jacobson , Alessandro Morbidelli , Hugh St. C. O'Neill

The final stage of planet formation is dominated by collisions between planetary embryos. The dynamics of this stage determine the orbital configuration and the mass and composition of planets in the system. In the solar system, late giant…

Earth and Planetary Astrophysics · Physics 2009-07-22 Robert A. Marcus , Sarah T. Stewart , Dimitar Sasselov , Lars Hernquist

The planetary differentiation models of Mars are proposed that take into account core-mantle and core-mantle-crust differentiation. The numerical simulations are presented for the early thermal evolution of Mars spanning up to the initial…

Earth and Planetary Astrophysics · Physics 2014-08-19 S. Sahijpal , G. K. Bhatia

The Hf-W isotopic system is the reference chronometer for determining the chronology of Earth's accretion and differentiation. However, its results depend strongly on uncertain parameters, including the extent of metal-silicate…

Earth and Planetary Astrophysics · Physics 2024-11-27 D. C. Rubie , K. I. Dale , G. Nathan , M. Nakajima , E. S. Jennings , G. J. Golabek , S. A. Jacobson , A. Morbidelli
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