Breaking long-period resonance chains with stellar flybys

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
C. Charalambous, N. Cuello, C. Petrovich
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Abstract

Context. Planetary migration models predict multiple planets captured into a chain of mean-motion resonances during the disk phase. Over a dozen systems have been observed in these configurations, with nearly all close-in planets with a lack of resonant chains for planets with orbital periods longer than 300 days.Aims. Dynamical studies often overlook the fact that stars do not evolve in isolation. In this work, we explore the possibility that the absence of giant planets in long-period resonant chains may be due to post-formation disruption caused by stellar flybys.Methods. For planets in the 2:1-2:1 and 3:2-3:2 resonant chains, we evaluated the long-term stability after varying parameters such as the planet masses, as well as the inclination, pericentric distance, and mass of the flyby star.Results. Our integrations show that the 2:1-2:1 resonant chain is significantly more resilient to a stellar flyby than for the 3:2-3:2 configuration. The nature of the instability is different in both scenarios; the 2:1-2:1 becomes unstable quickly, soon after a penetrative close encounter. Instead, planets in the 3:2-3:2 chain become unstable in long timescales due to more distant flybys (up to q/aout 25 for Jupiter-mass planets) that only provide small perturbations for the system to chaotically dissolve.Conclusions. If an encounter occurs between a star hosting planets and a passing star, Jupiter-mass systems with three planets in a 3:2-3:2 resonant chain or more compact initial configurations are likely to be disrupted.
用恒星飞掠打破长周期共振链
上下文。行星迁移模型预测,在圆盘阶段,多颗行星被捕获成一条平均运动共振链。在这些构造中已经观察到十几个系统,几乎所有的近距离行星都缺乏共振链,对于轨道周期超过300天的行星来说。动力学研究常常忽略了恒星不是孤立地演化的这一事实。在这项工作中,我们探索了长周期共振链中巨行星缺失的可能性,这可能是由于恒星飞掠引起的形成后破坏。对于处于2:1-2:1和3:2-3:2共振链的行星,我们评估了行星质量、倾角、周心距离和飞掠恒星质量等参数变化后的长期稳定性。我们的集成表明2:1-2:1的共振链比3:2-3:2的结构更能适应恒星飞行。在这两种情况下,不稳定性的性质是不同的;2:1-2:1很快变得不稳定,在穿透性近距离接触后不久。相反,在3:2-3:2链上的行星在长时间尺度上变得不稳定,因为更遥远的飞掠(对于木星质量的行星来说,高达q/ 25)只会给系统带来很小的扰动,使其混乱地溶解。如果一颗拥有行星的恒星与一颗经过的恒星相遇,三颗行星在3:2-3:2共振链中或更紧凑的初始构型的木星质量系统可能会被破坏。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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