论文标题

星际物体的轻雪板方案的可观察测试

Observable tests for the light-sail scenario of interstellar objects

论文作者

Zhou, Wen-Han, Liu, Shang-Fei, Zhang, Yun, Lin, Douglas N. C.

论文摘要

我们通过在物理模型和观察性约束之间进行比较来仔细检查第一个星际对象(ISO)1I/2017 U1(`o oumuamua)的轻型帆场景。这些分析可以概括为未来对类似Oumuamua的对象的调查。由于磁场和气体原子,光帆经历了星际空间的漂移,这对导航系统构成了挑战。当光帆进入内部太阳系时,侧向辐射压力会导致相当大的非偏移位移。极高的尺寸比和翻滚运动可能会导致光曲线具有极大的振幅,甚至可以使轻帆不时地看不见。这些观察性特征使我们能够检查星际物体的轻型帆场景。 我们的结果表明,即使旅行距离只有1个,即使旅行距离仅为1 pc,在星际介质中自由旋转的轻帆的漂移是$ \ sim 100 \。对于光帆的预期亮度调制,与`oumuamua观察到的变化幅度匹配的概率<1.5 \%($ \ sim $ 2.5-3)。此外,在发现后两个月的两个月内,所有55个观测值分布在所有55个观察结果中,可见的滚滚光袋的概率为0.4%。辐射压力可能会导致较大的位移,而轨道平面对于光链而言,辐射压力比Oumuamua的轨道平面正常。同样,Oumuamua的抗极性与侧向加速度的比率偏离了光帆的比例〜1.5σ。我们建议`oumuamua不太可能轻帆。侵入的轻帆的动力学(如果存在)具有独特的观察性特征,可以在未来的调查中使用我们的方法对其进行定量识别和分析。

We scrutinize the light sail scenario of the first interstellar object (ISO) 1I/2017 U1 (`Oumuamua) by making comparisons between physical models and observational constraints. These analyses can be generalized for future surveys of `Oumuamua-like objects. The light sail goes through a drift in the interstellar space due to the magnetic field and gas atoms, which poses challenges to the navigation system. When the light sail enters the inner solar system, the sideways radiation pressure leads to a considerable non-radial displacement. The immensely high dimensional ratio and the tumbling motion could cause a light curve with an extremely large amplitude and could even make the light sail invisible from time to time. These observational features allow us to examine the light sail scenario of interstellar objects. Our results show that the drift of the freely rotating light sail in the interstellar medium is $\sim 100\,$au even if the travel distance is only 1 pc. The probability is < 1.5\% for the expected brightness modulation of the light sail to match with `Oumuamua's observed variation amplitude ($\sim$ 2.5 -- 3). In addition, the probability is 0.4% for the tumbling light-sail to be visible (brighter than V=27) in all 55 observations spread over two months after discovery. Radiation pressure could cause a larger displacement that is normal to the orbital plane for a lightsail than that for `Oumuamua. Also, the ratio of anti-solar to sideways acceleration of `Oumuamua deviates from that of the light sail by ~ 1.5σ. We suggest that `Oumuamua is unlikely a light sail. The dynamics of an intruding light sail, if exist, has distinct observational signatures, which can be quantitatively identified and analyzed with our methods in future surveys.

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