论文标题

y矮人和温带巨型行星大气中的水云的微物理学

Microphysics of Water Clouds in the Atmospheres of Y Dwarfs and Temperate Giant Planets

论文作者

Mang, James, Gao, Peter, Hood, Callie E., Fortney, Jonathan J., Batalha, Natasha, Yu, Xinting, de Pater, Imke

论文摘要

有望在Y矮人和巨型行星上形成水云,其平衡温度在地球的温度附近或下方,从而极大地改变了它们的大气成分以及它们的反照率和热发射光谱。在这里,我们使用1D社区气溶胶和辐射模型进行大气(CARMA)来研究凉爽的子宫世界上水云的微物理学,以限制其典型的粒径和垂直范围,并考虑到成核和凝结,这些粒径和凝结尚未详细考虑H/He He/He Heabiration的水云。我们计算了Y矮人和温带巨型系外行星大气模型的小网格,水云通过均匀的成核形成,并在云层凝结核上形成,由有机光化学粉尘,有机光化学和氯化氯化物云颗粒组成。我们介绍了使用Virga提取最佳沉积效率参数(f $ _ {sed} $)的云物理学的Ackerman&Marley参数化的比较。我们发现,没有Virga模型准确地复制了Carma Water云,并且F $ _ {sed} $中的过渡是从云的底部到云顶部的。此外,我们生成模拟的热发射和几何反照率光谱,发现Carma和Virga模型之间的较大的,波长依赖性的差异,不同的气体吸收带对不同的云分布的反应不同,尤其是在M频段中的较大差异。因此,限制水云的垂直依赖性特性对于估计这些大气中的气体丰度至关重要。

Water clouds are expected to form on Y dwarfs and giant planets with equilibrium temperatures near or below that of Earth, drastically altering their atmospheric compositions and their albedos and thermal emission spectra. Here we use the 1D Community Aerosol and Radiation Model for Atmospheres (CARMA) to investigate the microphysics of water clouds on cool substellar worlds to constrain their typical particle sizes and vertical extent, taking into consideration nucleation and condensation, which have not been considered in detail for water clouds in H/He atmospheres. We compute a small grid of Y dwarf and temperate giant exoplanet atmosphere models with water clouds forming through homogeneous nucleation and heterogeneous nucleation on cloud condensation nuclei composed of meteoritic dust, organic photochemical hazes, and upwelled potassium chloride cloud particles. We present comparisons with the Ackerman & Marley parameterization of cloud physics to extract the optimal sedimentation efficiency parameter (f$_{sed}$) using Virga. We find that no Virga model replicates the CARMA water clouds exactly and that a transition in f$_{sed}$ occurs from the base of the cloud to the cloud top. Furthermore, we generate simulated thermal emission and geometric albedo spectra and find large, wavelength-dependent differences between the CARMA and Virga models, with different gas absorption bands reacting differently to the different cloud distributions and particularly large differences in the M band. Therefore, constraining the vertically-dependent properties of water clouds will be essential to estimating the gas abundances in these atmospheres.

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