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首页> 外文期刊>The Astrophysical journal >The Ratio Of Retrograde To Prograde Orbits: A Test For Kuiper Belt Binary Formation Theories
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The Ratio Of Retrograde To Prograde Orbits: A Test For Kuiper Belt Binary Formation Theories

机译:逆行轨道比:对柯伊伯带二元形成理论的检验

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摘要

With the discovery of Kuiper Belt binaries that have wide separations and roughly equal masses, new theories were proposed to explain their formation. Two formation scenarios were suggested by Goldreich and collaborators. In the first, dynamical friction generated by a sea of small bodies enables a transient binary to become bound (the L~2s mechanism); in the second, a transient binary gets bound by an encounter with a third body (the L~3 mechanism). We show that these different binary formation scenarios leave their own unique signatures in the relative abundance of prograde to retrograde binary orbits. This signature is due to the fact that stable retrograde orbits can exist much further out in the Hill sphere than prograde orbits. This provides an excellent opportunity to distinguish between the different binary formation scenarios observationally. We predict that if binary formation proceeded while sub-Hill velocities prevailed, the vast majority of all binaries with comparable masses would have retrograde orbits. This dominance of retrograde binary orbits is a result of binary formation via the L~2s mechanism, or any other mechanism that dissipates energy in a smooth and gradual manner. For super-Hill velocities, binary formation proceeds via the L~3 mechanism, which produces a roughly equal number of prograde and retrograde binaries. These predictions assume that subsequent orbital evolution due to dynamical friction and dynamical stirring of the Kuiper Belt did not alter the sense of the binary orbit after formation.
机译:随着柯伊伯带双星的发现,它们具有较大的间隔和大致相等的质量,提出了新的理论来解释它们的形成。 Goldreich和合作者提出了两种编队方案。首先,由小物体海产生的动摩擦使瞬态二元受到束缚(L〜2s机理)。在第二种情况下,瞬态二进制文件与第三种物体相遇(L〜3机制)受到约束。我们表明,这些相对不同的二进制形成方案在相对丰富的向逆向二进制轨道前进的过程中留下了自己独特的特征。该签名是由于以下事实:稳定的逆行轨道比顺行轨道可以在希尔球体中更远地存在。这提供了一个极好的机会,可以观察到区分不同的二元形成方案。我们预测,如果在次山速占优势的情况下继续进行双星形成,那么具有可比质量的所有双星中的绝大多数将具有逆行轨道。逆行二进制轨道的这种优势是通过L〜2s机制或以平滑和渐进方式消散能量的任何其他机制形成二进制的结果。对于超希尔斯速度,通过L〜3机制进行二进制形成,从而产生大致相等数量的前进和后退二进制。这些预测假设,由于柯伊伯带的动态摩擦和动态搅动而导致的随后的轨道演化不会改变形成后的二元轨道的感觉。

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