Ward William R, Canup Robin M, Rufu Raluca
Planetary Science Directorate, Southwest Research Institute, Boulder, CO, USA.
J Geophys Res Planets. 2020 Jun;125(6):e2019JE006266. doi: 10.1029/2019je006266. Epub 2020 Apr 30.
A high-angular momentum giant impact with the Earth can produce a Moon with a silicate isotopic composition nearly identical to that of Earth's mantle, consistent with observations of terrestrial and lunar rocks. However, such an event requires subsequent angular momentum removal for consistency with the current Earth-Moon system. The early Moon may have been captured into the evection resonance, occurring when the lunar perigee precession period equals 1 year. It has been proposed that after a high- angular momentum giant impact, evection removed the angular momentum excess from the Earth-Moon pair and transferred it to Earth's orbit about the Sun. However, prior N-body integrations suggest this result depends on the tidal model and chosen tidal parameters. Here, we examine the Moon's encounter with evection using a complementary analytic description and the Mignard tidal model. While the Moon is in resonance, the lunar longitude of perigee librates, and if tidal evolution excites the libration amplitude sufficiently, escape from resonance occurs. The angular momentum drain produced by formal evection depends on how long the resonance is maintained. We estimate that resonant escape occurs early, leading to only a small reduction (~ few to 10%) in the Earth-Moon system angular momentum. Moon formation from a high-angular momentum impact would then require other angular momentum removal mechanisms beyond standard libration in evection, as have been suggested previously.
与地球的一次高角动量巨型撞击能够产生一个硅酸盐同位素组成与地球地幔几乎相同的月球,这与对地球和月球岩石的观测结果相符。然而,这样一个事件需要随后去除角动量,才能与当前的地月系统保持一致。早期的月球可能被捕获到了出差共振中,这种共振发生在月球近地点进动周期等于1年的时候。有人提出,在一次高角动量巨型撞击之后,出差共振消除了地月系统多余的角动量,并将其转移到了地球绕太阳的轨道上。然而,之前的N体积分表明,这一结果取决于潮汐模型和所选的潮汐参数。在这里,我们使用一种互补的解析描述和米尼亚德潮汐模型来研究月球与出差共振的遭遇。当月球处于共振状态时,近地点的月球经度会发生天平动,如果潮汐演化充分激发了天平动幅度,就会发生共振逃逸。形式上的出差共振产生的角动量消耗取决于共振维持的时间长短。我们估计共振逃逸发生得很早,导致地月系统角动量仅小幅减少(约几%到10%)。那么,由高角动量撞击形成月球将需要标准出差天平动之外的其他角动量去除机制,正如之前有人所提出的那样。