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首页> 外文期刊>The Astrophysical journal >APPLICATION OF GAS DYNAMICAL FRICTION FOR PLANETESIMALS. II. EVOLUTION OF BINARY PLANETESIMALS
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APPLICATION OF GAS DYNAMICAL FRICTION FOR PLANETESIMALS. II. EVOLUTION OF BINARY PLANETESIMALS

机译:气体动力学摩擦在行星动力学中的应用。二。二元行星进化

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One of the first stages of planet formation is the growth of small planetesimals and their accumulation into large planetesimals and planetary embryos. This early stage occurs long before the dispersal of most of the gas from the protoplanetary disk. At this stage gas–planetesimal interactions play a key role in the dynamical evolution of single intermediate-mass planetesimals (mp?~?1021–1025 g) through gas dynamical friction (GDF). A significant fraction of all solar system planetesimals (asteroids and Kuiper-belt objects) are known to be binary planetesimals (BPs). Here, we explore the effects of GDF on the evolution of BPs embedded in a gaseous disk using an N-body code with a fiducial external force accounting for GDF. We find that GDF can induce binary mergers on timescales shorter than the disk lifetime for masses above mp??1022 g at 1 au, independent of the binary initial separation and eccentricity. Such mergers can affect the structure of merger-formed planetesimals, and the GDF-induced binary inspiral can play a role in the evolution of the planetesimal disk. In addition, binaries on eccentric orbits around the star may evolve in the supersonic regime, where the torque reverses and the binary expands, which would enhance the cross section for planetesimal encounters with the binary. Highly inclined binaries with small mass ratios, evolve due to the combined effects of Kozai–Lidov (KL) cycles with GDF which lead to chaotic evolution. Prograde binaries go through semi-regular KL evolution, while retrograde binaries frequently flip their inclination and ~50% of them are destroyed.
机译:行星形成的最初阶段之一是小行星的生长以及它们积累成大行星和行星胚胎。这个早期阶段发生在来自原行星盘的大部分气体扩散之前。在这一阶段,气体-行星相互作用通过气体动力摩擦(GDF)在单个中等质量行星(mp?〜?1021–1025 g)的动力学演化中起关键作用。已知所有太阳系小行星(小行星和柯伊伯带天体)中有很大一部分是二元小行星(BP)。在这里,我们使用N体代码和GDF的基准外力探索GDF对嵌入气态磁盘中BP的影响。我们发现,对于1 au mp≥1022 g的质量,GDF可以在比磁盘寿命短的时间尺度上诱导二进制合并,而与二进制初始分离和离心率无关。这种合并会影响合并形成的小行星的结构,而GDF诱导的二元吸气可以在小行星盘的演化中发挥作用。此外,围绕恒星的偏心轨道上的双星可能会在超音速状态下演化,在这种情况下,扭矩会反转,双星会膨胀,这会增大与双星发生小行星碰撞的横截面。由于Kozai-Lidov(KL)循环与GDF的综合作用,导致具有小质量比的高度倾斜的二元进化,从而导致混沌进化。逆向二进制文件会经历KL的半规则演变,而逆向二进制文件经常会改变其倾斜度,其中约50%被破坏。

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