论文标题

紧凑的多个星际系统的体系结构:多样性和统一性

Architectures of Compact Multi-planet Systems: Diversity and Uniformity

论文作者

Weiss, Lauren M., Millholland, Sarah C., Petigura, Erik A., Adams, Fred C., Batygin, Konstantin, Bloch, Anthony M., Mordasini, Christoph

论文摘要

过去十年来,系外行星科学中最重要的发展之一是发现了具有亚北极尺寸行星至1〜AU的多行星系统。本章探讨了这些行星系统的体系结构,这些系统通常显示出显着的均匀性:行星的尺寸几乎相等,规则的轨道间距,低偏心率和小相互倾斜。这种均匀性与被认为是整体的外部样本(以及我们的内部太阳系)的多样性形成鲜明对比。我们从对观察结果(包括可能的偏见)进行批判性综述开始,并发现这些豌豆中的豌豆行星系统显然是行星形成过程的共同结果。与确切的均匀性相比,适度的偏离表明了其他模式,例如,随着半高轴的速度缓慢增加行星质量。恒星形成过程自然会产生与产生这些行星系统所需的属性的杂质磁盘,尽管固体材料必须从其初始位置向内移动。我们讨论行星装配的主要模式,轨道迁移的作用以及鼻中大气后的损失。发现成熟的行星系统接近其最小能量(潮汐平衡)构型;这一发现为其观察到的特性提供了部分解释,并表明必须进行有效的能量耗散。最后,我们考虑种群综合模型,并表明豌豆在pod模式中出现,对输入参数有合理的选择。尽管如此,仍然存在有趣的观察和理论挑战,以了解这些令人惊讶的有组织的行星系统如何源于它们的形成过程的混乱。

One of the most important developments in exoplanet science in the past decade is the discovery of multi-planet systems with sub-Neptune-sized planets interior to 1~AU. This chapter explores the architectures of these planetary systems, which often display a remarkable degree of uniformity: the planets have nearly equal sizes, regular orbital spacing, low eccentricities, and small mutual inclinations. This uniformity stands in sharp contrast to the diverse nature of the exoplanet sample considered as a whole (as well as our inner solar system). We begin with a critical review of the observations -- including possible biases -- and find that these peas-in-a-pod planetary systems are apparently a common outcome of the planet formation process. Modest departures from exact uniformity suggest additional patterns, such as the planet mass slowly increasing with semi-major axis. The star formation process naturally produces circumstellar disks with the properties required to produce these planetary systems, although the solid material must move inward from its initial location. We discuss primary modes of planetary assembly, the role of orbital migration, and post-nebular atmospheric loss. Mature planetary systems are found to be near their minimum energy (tidal equilibrium) configurations; this finding provides a partial explanation for their observed properties and indicates that efficient energy dissipation must occur. Finally, we consider population synthesis models and show that peas-in-a-pod patterns emerge with reasonable choices for the input parameters. Nonetheless, interesting observational and theoretical challenges remain in order to understand how these surprisingly organized planetary systems arise from the disorder of their formation processes.

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