论文标题

寡头生长引起的平均运动共振的行星链

Chains of Planets in Mean Motion Resonances Arising from Oligarchic Growth

论文作者

Morrison, Sarah J., Dawson, Rebekah I., MacDonald, Mariah G.

论文摘要

具有多个行星具有平均运动共振的系外行星系统通常被誉为磁盘驱动迁移的路标。 Kepler-223和Kepler-80之类的谐振链由三体谐振角度图和/或具有两体共振角度图的三个行星组成,每对具有两体共振角度。在这里,我们调查了原位形成的近距离地铁和迷你核电,由于耗尽的气盘的耗散而可以锁定到谐振链中。我们模拟了行星形成的巨大冲击阶段,包括来自气态磁盘的偏心性阻尼,然后在数千万年内进行了动力学演变。在一小部分模拟系统中,我们发现行星自然锁定在谐振链中。这些行星在气盘阶段达到了一系列近乎全能的周期比率,经历了偏心率阻尼,使它们陷入共鸣,随着气盘消散而保持共鸣,并避免随后的巨大冲击,偏心性激发和CHAOTIC扩散,使行星从共振中脱离行星。使行星能够在气盘阶段完成其形成的磁盘条件使这些行星能够达到紧密的周期比<= 2,并且如果它们恰好是整数周期比率,则将其锁定为共振。使用MacDonald等人推导的不同磁盘条件的加权。 (2020)和正向建模开普勒选择效应,我们发现我们通过寡头生长对原位形成的模拟导致具有整数周期比的可观察三重量,并且具有与观察到的开普勒系统相当的谐振角度。

Exoplanet systems with multiple planets in mean motion resonances have often been hailed as a signpost of disk driven migration. Resonant chains like Kepler-223 and Kepler-80 consist of a trio of planets with the three-body resonant angle librating and/or with a two-body resonant angle librating for each pair. Here we investigate whether close-in super-Earths and mini-Neptunes forming in situ can lock into resonant chains due to dissipation from a depleted gas disk. We simulate the giant impact phase of planet formation, including eccentricity damping from a gaseous disk, followed by subsequent dynamical evolution over tens of millions of years. In a fraction of simulated systems, we find that planets naturally lock into resonant chains. These planets achieve a chain of near-integer period ratios during the gas disk stage, experience eccentricity damping that captures them into resonance, stay in resonance as the gas disk dissipates, and avoid subsequent giant impacts, eccentricity excitation, and chaotic diffusion that would dislodge the planets from resonance. Disk conditions that enable planets to complete their formation during the gas disk stage enable those planets to achieve tight period ratios <= 2 and, if they happen to be near integer period ratios, lock into resonance. Using the weighting of different disk conditions deduced by MacDonald et al. (2020) and forward modeling Kepler selection effects, we find that our simulations of in situ formation via oligarchic growth lead to a rate of observable trios with integer period ratios and librating resonant angles comparable to observed Kepler systems.

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