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In this Thesis I studied the formation of the four giant planets of the Solar System in the framework of the nucleated instability hypothesis. The model considers that solids and gas accretion are coupled in an interactive fashion, taking…

地球与行星天体物理 · 物理学 2010-02-11 Andrea Fortier

In this paper we investigate the formation of Uranus and Neptune, according to the core-nucleated accretion model, considering formation locations ranging from 12 to 30 AU from the Sun, and with various disk solid-surface densities and core…

地球与行星天体物理 · 物理学 2015-06-19 Ravit Helled , Peter Bodenheimer

The outer giant planets, Uranus and Neptune, pose a challenge to theories of planet formation. They exist in a region of the Solar System where long dynamical timescales and a low primordial density of material would have conspired to make…

天体物理学 · 物理学 2009-11-07 Edward W. Thommes , Martin J. Duncan , Harold F. Levison

It is widely held that the first step in forming the gas giant planets, such as Jupiter and Saturn, is to form solid `cores' of roughly 10 M$_\oplus$. Getting the cores to form before the solar nebula dissipates ($\sim\!1-10\,$Myr) has been…

地球与行星天体物理 · 物理学 2015-10-09 Harold F. Levison , Katherine A. Kretke , Martin J. Duncan

The core-accretion and disk instability models have so far been used to explain planetary formation. These models have different conditions, such as planet mass, disk mass, and metallicity for formation of gas giants. The core-accretion…

天体物理学 · 物理学 2011-02-11 T. Matsuo , H. Shibai , T. Ootsubo , M. Tamura

The Core Accretion model is widely accepted as the primary mechanism for forming planets up to a few Jupiter masses. However, the formation of super-massive planets remains a subject of debate, as their formation via the Core Accretion…

地球与行星天体物理 · 物理学 2024-12-10 M. Nguyen , V. Adibekyan

The core accretion theory of planet formation has at least two fundamental problems explaining the origins of Uranus and Neptune: (1) dynamical times in the trans-Saturnian solar nebula are so long that core growth can take > 15 Myr, and…

地球与行星天体物理 · 物理学 2015-05-14 Sarah E. Dodson-Robinson , Peter Bodenheimer

The origin of Uranus and Neptune is still unknown. In particular, it has been challenging for planet formation models to form the planets in their current radial distances within the expected lifetime of the solar nebula. In this paper, we…

地球与行星天体物理 · 物理学 2022-05-25 Claudio Valletta , Ravit Helled

In the standard model of core accretion, the formation of giant planets occurs by two main processes: first, a massive core is formed by the accretion of solid material; then, when this core exceeds a critical value (typically greater than…

地球与行星天体物理 · 物理学 2015-11-25 O. M. Guilera

One of the most challenging problems we face in our understanding of planet formation is how Jupiter and Saturn could have formed before the the solar nebula dispersed. The most popular model of giant planet formation is the so-called 'core…

地球与行星天体物理 · 物理学 2015-05-14 H. F. Levison , E. Thommes , M. J. Duncan

The existence of Uranus and Neptune presents severe difficulties for the core accretion model for the formation of ice giant planets. We suggest an alternative mechanism, namely disk instability leading to the formation of gas giant…

天体物理学 · 物理学 2009-11-07 Alan P. Boss , George W. Wetherill , Nader Haghighipour

We study the formation of a giant gas planet by the core--accretion gas--capture process, with numerical simulations, under the assumption that the planetary core forms in the center of an anti-cyclonic vortex. The presence of the vortex…

天体物理学 · 物理学 2009-11-13 Hubert Klahr , Peter Bodenheimer

Planet formation encompasses processes that span a remarkable 40 magnitudes in mass, ranging from collisions between micron-sized grains inherited from the ISM to the accretion of gas by giant planets. The planet formation process takes…

地球与行星天体物理 · 物理学 2024-12-18 Chris Ormel

The formation history of Jupiter has been of interest due to its ability to shape the solar system's history. Yet little attention has been paid to the formation and growth of Saturn and the other giant planets. Here, we explore the…

地球与行星天体物理 · 物理学 2024-07-31 Anuja Raorane , Ramon Brasser , Soko Matsumura , Tommy Chi Ho Lau , Man Hoi Lee , Audrey Bouvier

Numerical simulations show that the migration of growing planetary cores may be dominated by turbulent fluctuations in the protoplanetary disk, rather than by any mean property of the flow. We quantify the impact of this stochastic core…

天体物理学 · 物理学 2009-11-10 W. K. M. Rice , Philip J. Armitage

The favored theoretical explanation for giant planet formation -- in both our solar system and others -- is the core accretion model (although it still has some serious difficulties). In this scenario, planetesimals accumulate to build up…

天体物理学 · 物理学 2016-08-30 Gregory Laughlin , Peter Bodenheimer , Fred C. Adams

The terrestrial planets are believed to have formed by violent collisions of tens of lunar- to Mars-size protoplanets at time t<200 Myr after the protoplanetary gas disk dispersal (t_0). The solar system giant planets rapidly formed during…

地球与行星天体物理 · 物理学 2021-01-13 David Nesvorny , Fernando V. Roig , Rogerio Deienno

Sedimentation rates of silicate grains in gas giant protoplanets formed by disk instability are calculated for protoplanetary masses between 1 M_Saturn to 10 M_Jupiter. Giant protoplanets with masses of 5 M_Jupiter or larger are found to be…

天体物理学 · 物理学 2009-11-13 Ravit Helled , Gerald Schubert

In the last few years, the so-called "Nice model" has got a significant importance in the study of the formation and evolution of the solar system. According to this model, the initial orbital configuration of the giant planets was much…

地球与行星天体物理 · 物理学 2015-05-28 O. M. Guilera , A. Fortier , A. Brunini , O. G. Benvenuto

The core accretion mechanism is presently the most widely accepted cause of the formation of giant planets. For simplicity, most models presently assume that the growth of planetary embryos occurs in isolation. We explore how the…

地球与行星天体物理 · 物理学 2015-05-19 O. M. Guilera , A. Brunini , O. G. Benvenuto
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