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OSSOS. V. Diffusion in the Orbit of a High-perihelion Distant Solar System Object

机译:OSSOS。 V.高远日遥太阳系天体在轨道上的扩散

摘要

We report the discovery of the minor planet 2013 SY99 on an exceptionally distant, highly eccentric orbit. With a perihelion of 50.0. au, 2013 SY99' s orbit has a semimajor axis of 730 +/- 40. au, the largest known for a high-perihelion trans-Neptunian object (TNO), and well beyond those of (90377) Sedna and 2012 VP113. Yet, with an aphelion of 1420 +/- 90. au, 2013 SY99' s orbit is interior to the region influenced by Galactic tides. Such TNOs are not thought to be produced in the current known planetary architecture of the solar system, and they have informed the recent debate on the existence of a distant giant planet. Photometry from the Canada-France-Hawaii Telescope, Gemini North, and Subaru indicate 2013 SY99 is similar to 250. km in diameter and moderately red in color, similar to other dynamically excited TNOs. Our dynamical simulations show that Neptune's weak influence during 2013 SY99' s perihelia encounters drives diffusion in its semimajor axis of hundreds of astronomical units over 4. Gyr. The overall symmetry of random walks in the semimajor axis allows diffusion to populate 2013 SY99' s orbital parameter space from the 1000 to 2000. au inner fringe of the Oort cloud. Diffusion affects other known TNOs on orbits with perihelia of 45 to 49. au and semimajor axes beyond 250. au. This provides a formation mechanism that implies an extended population, gently cycling into and returning from the inner fringe of the Oort cloud.
机译:我们报告说,在异常遥远,高度偏心的轨道上发现了2013 SY99小行星。近视点为50.0。 au,2013 SY99的轨道的半长轴为730 +/-40。au,是最大的高近日海王星海王星天体(TNO),远超过(90377)Sedna和2012 VP113。然而,2013年SY99的轨道是1420 +/- 90. au99的轨道,是受银河潮汐影响的区域的内部。人们不认为这种TNO是在当前已知的太阳系行星结构中产生的,它们已为最近有关远处巨型行星存在的辩论提供了信息。加拿大-法国-夏威夷望远镜,双子北和斯巴鲁的测光表明,2013 SY99的直径类似于250. km,颜色为中等红色,与其他动态激发的TNO相似。我们的动力学模拟显示,海王星在2013 SY99年近日点期间遇到的微弱影响促使其在半长轴上扩散了超过4. Gyr的数百个天文单位。半长轴上随机游动的总体对称性允许扩散以填充2013 SY99的轨道参数空间(从1000到2000)。Oort云的内部边缘。扩散会影响周长为45至49 au且半长轴超过250 au的轨道上的其他已知TNO。这提供了一种形成机制,暗示着种群的扩展,它会缓慢地循环进入奥尔特云的内部边缘并从中返回。

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