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月球从高倾斜度、高角动量的地球潮汐演化而来。

Tidal evolution of the Moon from a high-obliquity, high-angular-momentum Earth.

机构信息

Carl Sagan Center, SETI Institute, 189 North Bernardo Avenue, Mountain View, California 94043, USA.

Department of Astronomy, University of Maryland, Physical Sciences Complex, College Park, Maryland 20742, USA.

出版信息

Nature. 2016 Nov 17;539(7629):402-406. doi: 10.1038/nature19846. Epub 2016 Oct 31.

Abstract

In the giant-impact hypothesis for lunar origin, the Moon accreted from an equatorial circum-terrestrial disk; however, the current lunar orbital inclination of five degrees requires a subsequent dynamical process that is still unclear. In addition, the giant-impact theory has been challenged by the Moon's unexpectedly Earth-like isotopic composition. Here we show that tidal dissipation due to lunar obliquity was an important effect during the Moon's tidal evolution, and the lunar inclination in the past must have been very large, defying theoretical explanations. We present a tidal evolution model starting with the Moon in an equatorial orbit around an initially fast-spinning, high-obliquity Earth, which is a probable outcome of giant impacts. Using numerical modelling, we show that the solar perturbations on the Moon's orbit naturally induce a large lunar inclination and remove angular momentum from the Earth-Moon system. Our tidal evolution model supports recent high-angular-momentum, giant-impact scenarios to explain the Moon's isotopic composition and provides a new pathway to reach Earth's climatically favourable low obliquity.

摘要

在月球起源的大碰撞假说中,月球是从一个赤道的环绕地球的盘中吸积而成的;然而,目前月球轨道的五度倾角需要一个尚未清楚的后续动力学过程。此外,大碰撞理论一直受到月球出人意料的与地球相似的同位素组成的挑战。在这里,我们表明,由于月球倾斜而导致的潮汐耗散是月球潮汐演化过程中的一个重要效应,而且月球过去的倾角一定非常大,这违背了理论解释。我们提出了一个潮汐演化模型,从月球在一个初始快速自转、高倾角的地球赤道轨道开始,这是大碰撞的一个可能结果。我们使用数值模拟表明,太阳对月球轨道的摄动自然会导致月球的大倾角,并从地月系统中移除角动量。我们的潮汐演化模型支持最近的高角动量、大碰撞情景来解释月球的同位素组成,并为达到地球气候有利的低倾角提供了一条新途径。

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