ossosxv:用观测到的散射TNOS探测遥远的太阳系。

IF 5.1 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Astronomical Journal Pub Date : 2019-07-01 Epub Date: 2019-07-02 DOI:10.3847/1538-3881/ab2383
Nathan A Kaib, Rosemary Pike, Samantha Lawler, Maya Kovalik, Christopher Brown, Mike Alexandersen, Michele T Bannister, Brett J Gladman, Jean-Marc Petit
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引用次数: 0

摘要

大多数已知的从巨行星上引力散射的跨海王星天体(TNO)的轨道倾角与经典柯伊伯带的起源一致,但这些“散射TNO”中有一小部分的倾角对这个起源来说太大了(i>45°)。这些散射异常值以前被认为是奥尔特云的闯入者或是未被发现行星的证据。在这里,我们使用N体模拟和在外太阳系起源调查及其前身中检测到的69个半人马和散射TNO来测试这些假设。我们证实,观测到的散射物体不能仅仅来自经典的柯伊伯带,我们还表明奥尔特云和遥远的行星都会产生可观测到的高度倾斜的散射体。尽管来自奥尔特云的高度倾斜散射体的数量比观测到的少了约3倍,但来自太阳星系迁移或诞生星团的奥尔特云富集可以解决这一问题。同时,一颗遥远的、低离心率5Mõ的行星复制了观测到的高度倾斜散射体的部分,但总体倾斜分布比观测到的更令人兴奋。此外,这颗遥远的行星在分离的TNO之间产生了纵向不对称性,这种不对称性没有通常认为的那么极端,并且它的方向在已知TNO跨越的近日点范围内反转。为了进一步研究这些特征,有必要建立更完整的模型来探索行星的动力学起源。由于观测偏差的特征很好,我们的工作表明,探测到的散射体的轨道分布是对未观测到的遥远太阳系的有力约束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

OSSOS XV: PROBING THE DISTANT SOLAR SYSTEM WITH OBSERVED SCATTERING TNOS.

OSSOS XV: PROBING THE DISTANT SOLAR SYSTEM WITH OBSERVED SCATTERING TNOS.

OSSOS XV: PROBING THE DISTANT SOLAR SYSTEM WITH OBSERVED SCATTERING TNOS.

OSSOS XV: PROBING THE DISTANT SOLAR SYSTEM WITH OBSERVED SCATTERING TNOS.

Most known trans-Neptunian objects (TNOs) gravitationally scattering off the giant planets have orbital inclinations consistent with an origin from the classical Kuiper belt, but a small fraction of these "scattering TNOs" have inclinations that are far too large (i > 45°) for this origin. These scattering outliers have previously been proposed to be interlopers from the Oort cloud or evidence of an undiscovered planet. Here we test these hypotheses using N-body simulations and the 69 centaurs and scattering TNOs detected in the Outer Solar Systems Origins Survey and its predecessors. We confirm that observed scattering objects cannot solely originate from the classical Kuiper belt, and we show that both the Oort cloud and a distant planet generate observable highly inclined scatterers. Although the number of highly inclined scatterers from the Oort Cloud is ~3 times less than observed, Oort cloud enrichment from the Sun's galactic migration or birth cluster could resolve this. Meanwhile, a distant, low-eccentricity 5 M planet replicates the observed fraction of highly inclined scatterers, but the overall inclination distribution is more excited than observed. Furthermore, the distant planet generates a longitudinal asymmetry among detached TNOs that is less extreme than often presumed, and its direction reverses across the perihelion range spanned by known TNOs. More complete models that explore the dynamical origins of the planet are necessary to further study these features. With observational biases well-characterized, our work shows that the orbital distribution of detected scattering bodies is a powerful constraint on the unobserved distant solar system.

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来源期刊
Astronomical Journal
Astronomical Journal 地学天文-天文与天体物理
CiteScore
8.40
自引率
24.50%
发文量
501
审稿时长
2-4 weeks
期刊介绍: The Astronomical Journal publishes original astronomical research, with an emphasis on significant scientific results derived from observations. Publications in AJ include descriptions of data capture, surveys, analysis techniques, astronomical interpretation, instrumentation, and software and computing.
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