论文标题

棕色矮人气氛中的云交流反馈反馈

Cloud-convection feedback in brown dwarfs atmosphere

论文作者

Lefèvre, Maxence, Tan, Xianyu, Lee, Elspeth K. H., Pierrehumbert, R. T.

论文摘要

许多观察性证据表明,棕色矮人的大气中存在主动气象。已经观察到近红外亮度变异性。云在塑造这些大气的热结构和光谱特性中具有重要作用。这种可变性的机制尚不清楚,由于解决方案,一维模型和全球循环模型均无法完全研究此主题。在这项研究中,对流分辨率模型与灰色波段辐射转移相连,以研究对流气氛之间的耦合与在较大温度范围内的云的变异性之间的耦合以及数百公里的域。考虑了六种类型的云,其中包括定居在内。云使用Rosseland平均系数辐射活跃。辐射云的反馈可以在温度和云结构中驱动自发的大气变异性,这是在三个维度上首次建模的。硅酸盐云具有热结构的最大作用,在某些情况下,二次对流层产生,具体取决于假定的粒径。铁和铝云也对大气产生了重大影响。计算热光谱,我们发现云的最强效果是光波长处光谱特征的平滑。与观察到的L和T矮人在颜色磁性图上相比,在大多数情况下,模拟的大气是红色的。存在云孔的模拟更接近观测值。

Numerous observational evidence has suggested the presence of active meteorology in the atmospheres of brown dwarfs. A near-infrared brightness variability has been observed. Clouds have a major role in shaping the thermal structure and spectral properties of these atmospheres. The mechanism of such variability is still unclear and both 1D and global circulation model cannot fully study this topics due to resolution. In this study, a convective resolving model is coupled to grey-band radiative transfer in order to study the coupling between the convective atmosphere and the variability of clouds over a large temperature range with a domain of several hundreds of kilometers. Six types of clouds are considered, with microphysics including settling. The clouds are radiatively active using Rosseland mean coefficient. Radiative cloud feedback can drive spontaneous atmospheric variability in both temperature and cloud structure, as modeled for the first time in three dimensions. Silicate clouds have the most effect of the thermal structure with the generation of a secondary convective layer in some cases, depending on the assumed particle size. Iron and Aluminum clouds also have a substantial impact on the atmosphere. Thermal spectra were computed, and we find the strongest effect of clouds is the smoothing of spectral features at optical wavelengths. Compared to observed L and T dwarfs on color-magnitude diagram, the simulated atmospheres are redder for most of the cases. The simulations with the presence of cloud holes are closer to the observations.

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