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首页> 外文期刊>The Astrophysical journal >The Star–Planet Connection. I. Using Stellar Composition to Observationally Constrain Planetary Mineralogy for the 10 Closest Stars*
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The Star–Planet Connection. I. Using Stellar Composition to Observationally Constrain Planetary Mineralogy for the 10 Closest Stars*

机译:星-行星连接。 I.用恒星组成观测约束近十颗恒星的行星矿物学*

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The compositions of stars and planets are connected, but the definition of "habitability" and the "habitable zone" only take into account the physical relationship between the star and planet. Planets, however, are made truly habitable by both chemical and physical processes that regulate climatic and geochemical cycling between atmosphere, surface, and interior reservoirs. Despite this, an "Earth-like" planet is often defined as a planet made of a mixture of rock and Fe that is roughly 1 Earth-density. To understand the interior of a terrestrial planet, the stellar abundances of planet-building elements (e.g., Mg, Si, and Fe) can be used as a proxy for the planet's composition. We explore the planetary mineralogy and structure for fictive planets around the 10 stars closest to the Sun using stellar abundances from the Hypatia Catalog. Although our sample contains stars that are both sub- and super-solar in their abundances, we find that the mineralogies are very similar for all 10 planets—since the error or spread in the stellar abundances create significant degeneracy in the models. We show that abundance uncertainties need to be on the order of [Fe/H].
机译:恒星和行星的组成是相互联系的,但是“可居住性”和“可居住区域”的定义仅考虑了恒星和行星之间的物理关系。然而,通过调节大气层,地表层和内部储层之间的气候和地球化学循环的化学和物理过程,使行星真正变得宜居。尽管如此,“类地球”行星通常被定义为由岩石和铁的混合物组成的行星,大约是1个地球密度。为了了解地球的内部结构,可以使用大量的行星构成元素(例如Mg,Si和Fe)来替代行星的成分。我们使用Hypatia目录中的恒星丰度,探索了离太阳最近的10个恒星周围的虚拟行星的行星矿物学和结构。尽管我们的样本包含的恒星丰度既有亚太阳能也有超太阳能,但是我们发现所有10个行星的矿物学都非常相似-因为恒星丰度的误差或扩散会在模型中造成严重的退化。我们表明,丰度不确定度必须在[Fe / H]的数量级。

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