论文标题
加里斯托快速迁移的伽利略卫星的动态历史
Dynamical history of the Galilean satellites for a fast migration of Callisto
论文作者
论文摘要
最内向的伽利略卫星(IO,欧罗巴和甘蒂姆)的动力学的特征是一系列平均运动共振链,称为拉普拉斯共振,以及强烈的潮汐耗散,在大型时间尺度上引起了其半肌轴的广泛变化。尚不清楚Jovian系统中能量耗散的精确历史,但已经提出了几种理论。潮汐共振锁定指出,大型外月亮也可以快速迁移。如果Callisto是这种情况,那么过去它应该与Ganymede越过2:1平均运动共振,影响所有四个Galilean卫星的运动。因此,我们旨在确定Callisto的快速迁移是否与系统的当前轨道配置兼容。由于谐振交叉的混乱性,可能会出现不同的结果。我们的一小部分模拟表明,Callisto可以与Ganymede越过2:1的共鸣,而不会被捕获并保留拉普拉斯共鸣。但是,在大多数情况下,我们发现卡利斯托(Callisto)被捕获到共鸣,尽管移民不同。随着Callisto继续快速向外迁移,卫星在确切的8:4:2:1相当性的情况下显着偏离,同时仍保持谐振链。 Callisto最终可以通过与Ganymede跨越高阶的平均运动共振来逃脱它。之后,卫星系统能够放松其当前配置,以获得卫星的合适耗散参数。因此,虽然具有挑战性,但有可能建立对盖利亚卫星过去历史的自以为然的图片,以快速迁移卡利斯托。
The dynamics of the innermost Galilean satellites (Io, Europa and Ganymede) is characterised by a chain of mean motion resonances, called Laplace resonance, and by a strong tidal dissipation that causes wide variations of their semi-major axes over large timescales. The precise history of energy dissipation in the Jovian system is not known, but several theories have been proposed. Tidal resonance locking states that big outer moons can also migrate fast. If this is the case for Callisto, then it should have crossed the 2:1 mean motion resonance with Ganymede in the past, affecting the motion of all four Galilean satellites. Therefore, we aim to determine whether a fast migration for Callisto is compatible with the current orbital configuration of the system. Due to the chaotic nature of the resonant crossing, different outcomes are possible. A small portion of our simulations shows that Callisto can cross the 2:1 resonance with Ganymede without being captured and preserving the Laplace resonance. However, in most cases, we found that Callisto is captured into resonance, despite its divergent migration. As Callisto continues to migrate fast outwards, the moons depart substantially from the exact 8:4:2:1 commensurability, while still maintaining the resonant chain. Callisto can eventually escape it by crossing a high-order mean motion resonance with Ganymede. Afterwards, the moons' system is able to relax to its current configuration for suitable dissipation parameters of the satellites. Therefore it is possible, although challenging, to build a self-consistent picture of the past history of the Galilean satellites for a fast migration of Callisto.