早期太阳系中由于自引力盘引起的不稳定性。

IF 5.1 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Astronomical Journal Pub Date : 2019-02-01 DOI:10.3847/1538-3881/aafa71
B Quarles, N Kaib
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引用次数: 21

摘要

现代对早期太阳系的研究通常会引发巨行星轨道不稳定的可能性,这种不稳定是由行星和巨大的星子外盘之间的引力相互作用引发的。先前的研究表明,这种不稳定性可以在巨行星形成后显著延迟(约100s Myr)。圆盘中的物体通常以半主动的方式处理,其中包括它们对行星的引力,但忽略了星子之间的相互作用。我们使用GENGA进行N体数值模拟,该算法利用GPU来考虑物体之间的所有引力相互作用。尽管我们模拟的柯伊伯带粒子的质量比真实的原始柯伊伯天体的可能质量更大,但我们的模拟表明,原始柯伊柏带的自搅动对这颗巨行星不稳定的动力学非常重要。我们发现,星子之间的相互作用会动态地加热圆盘,通常会防止外太阳系的不稳定性在巨行星形成后推迟数千万年以上。在行星和星盘之间至少有3.5天文单位间隙的一小部分系统中,会出现更长的延迟。在大多数方面,我们最终的行星配置与太阳系的匹配率与之前的其他工作一致。盘的失稳前加热通常会产生与现代太阳系数值相当的最终木星偏心率,这在过去的工作中一直是一个难以匹配的限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Instabilities in the Early Solar System due to a Self-gravitating Disk.

Modern studies of the early solar system routinely invoke the possibility of an orbital instability among the giant planets triggered by gravitational interactions between the planets and a massive exterior disk of planetesimals. Previous works have suggested that this instability can be substantially delayed (~100s Myr) after the formation of the giant planets. Bodies in the disk are typically treated in a semi-active manner, wherein their gravitational force on the planets is included, but interactions between the planetesimals are ignored. We perform N-body numerical simulations using GENGA, which makes use of GPUs to allow for the inclusion of all gravitational interactions between bodies. Although our simulated Kuiper belt particles are more massive than the probable masses of real primordial Kuiper belt objects, our simulations indicate that the self-stirring of the primordial Kuiper belt is very important to the dynamics of the giant planet instability. We find that interactions between planetesimals dynamically heat the disk and typically prevent the outer solar system instability from being delayed by more than a few tens of million years after giant planet formation. Longer delays occur in a small fraction of systems that have at least 3.5 AU gaps between the planets and planetesimal disk. Our final planetary configurations match the solar system at a rate consistent with other previous works in most regards. Pre-instability heating of the disk typically yields final Jovian eccentricities comparable to the modern solar system value, which has been a difficult constraint to match in past works.

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来源期刊
Astronomical Journal
Astronomical Journal 地学天文-天文与天体物理
CiteScore
8.40
自引率
24.50%
发文量
501
审稿时长
2-4 weeks
期刊介绍: The Astronomical Journal publishes original astronomical research, with an emphasis on significant scientific results derived from observations. Publications in AJ include descriptions of data capture, surveys, analysis techniques, astronomical interpretation, instrumentation, and software and computing.
期刊最新文献
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