受限与行星三体问题中共轨道运动的研究进展

Q4 Physics and Astronomy
TAN Pan , SHEN Xin-he , HOU Xi-yun , LIAO Xin-hao
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引用次数: 0

摘要

1:1平均运动共振可称为受限或行星三体问题中的最低阶平均运动共振。圆形受限三体问题的五个著名的振动点是1:1共振的五个平衡点。共轨运动可以有不同形状的轨迹。在轨道偏心和倾角较小的情况下,蝌蚪形和马蹄形轨道是众所周知的。不同于基本振动模态的其他1:1振动模态可以存在于中等或较大的偏心率和倾角。同轨道天体在我们的太阳系中并不罕见,例如特洛伊小行星和土星的同轨道卫星系统。最近,在近地小行星中发现了几十个同轨道天体。这些共轨小行星被认为在不同的1:1振动模式之间周期性地凌日,主要是由于轨道进动、行星摄动和其他可能的影响。哈密顿系统和希尔三体问题是研究共轨道运动的两种有效方法。将微扰理论应用于哈密顿系统,标准程序包括扰动函数的推导、平均和归一化、理想共振模型理论、长期微扰理论等。同轨运动的全局动力学可以用适当展开的哈密顿方法来揭示。希尔问题特别适合于研究两个同轨道天体在近距离接触时的相对运动。由圆形受限三体问题导出的希尔方程是众所周知的。然而,一般的希尔问题,其运动方程的形式完全相同,适用于每个物体的质量不可忽略的非限制情况,即行星的情况。希尔问题可以转化为一个“规范形状”,这样平均原理就可以应用于构建一个长期摄动理论。除了这两种解析理论外,还可以参考数值方法,如周期轨道的逼近、截面的曲面、平衡或周期轨道携带的不变流形的计算等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Review on Co-orbital Motion in Restricted and Planetary Three-body Problems

The 1:1 mean motion resonance may be referred to as the lowest order mean motion resonance in restricted or planetary three-body problems. The five well-known libration points of the circular restricted three-body problem are five equilibriums of the 1:1 resonance. Coorbital motion may take different shapes of trajectory. In case of small orbital eccentricities and inclinations, tadpole-shape and horseshoe-shape orbits are well-known. Other 1:1 libration modes different from the elementary ones can exist at moderate or large eccentricities and inclinations. Coorbital objects are not rare in our solar system, for example the Trojans asteroids and the coorbital satellite systems of Saturn. Recently, dozens of coorbital bodies have been identified among the near-Earth asteroids. These coorbital asteroids are believed to transit recurrently between different 1:1 libration modes mainly due to orbital precessions, planetary perturbations, and other possible effects. The Hamiltonian system and the Hill’s three-body problem are two effective approaches to study coorbital motions. To apply the perturbation theory to the Hamiltonian system, standard procedures involve the development of the disturbing function, averaging and normalization, theory of ideal resonance model, secular perturbation theory, etc. Global dynamics of coorbital motion can be revealed by the Hamiltonian approach with a suitable expansion. The Hill’s problem is particularly suitable for the studies on the relative motion of two coorbital bodies during their close encounter. The Hill’s equation derived from the circular restricted three-body problem is well known. However, the general Hill’s problem whose equation of motion takes exactly the same form applies to the non-restricted case where the mass of each body is non-negligible, namely the planetary case. The Hill’s problem can be transformed into a “canonical shape” so that the averaging principle can be applied to construct a secular perturbation theory. Besides the two analytical theories, numerical methods may be consulted, for example the approach of periodic orbit, the surface of section, and the computation of invariant manifolds carried by equilibriums or periodic orbits.

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来源期刊
Chinese Astronomy and Astrophysics
Chinese Astronomy and Astrophysics Physics and Astronomy-Astronomy and Astrophysics
CiteScore
0.70
自引率
0.00%
发文量
20
期刊介绍: The vigorous growth of astronomical and astrophysical science in China led to an increase in papers on astrophysics which Acta Astronomica Sinica could no longer absorb. Translations of papers from two new journals the Chinese Journal of Space Science and Acta Astrophysica Sinica are added to the translation of Acta Astronomica Sinica to form the new journal Chinese Astronomy and Astrophysics. Chinese Astronomy and Astrophysics brings English translations of notable articles to astronomers and astrophysicists outside China.
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