论文标题

通过小域云模型模拟的不同行星重力下的对流和云

Convection and Clouds under Different Planetary Gravities Simulated by a Small-domain Cloud-resolving Model

论文作者

Liu, Jiachen, Yang, Jun, Zhang, Yixiao, Tan, Zhihong

论文摘要

在这项研究中,我们采用了云解析模型(CRM)来研究重力如何影响对流和云中的小域(96 km x 96 km)辐射辐射良好的平衡(RCE)。我们的实验是用1公里的水平网格间距进行的,可以解决大型(> 1 km $^2 $)的对流电池。我们发现在给定的恒星通量下,海面温度随重力降低而增加。这是因为低重力行星具有较大的水蒸气含量和更多的云层,从而产生了更大的透明温室效应,并且在小域中具有更强的云变暖效果。通过在不同的重力值下增加恒星通量,我们发现对流从准稳态态转移到振荡状态。在振荡状态下,有几天的对流循环,包括一个短的湿相,表面降水量强,没有表面降水。当对流转移到振荡状态时,水蒸气含量和高级云部分大大增加,导致快速变暖。向振荡状态过渡后,云净辐射效应随着恒星通量的增加而降低,这表明气候效应稳定。在准稳态状态下,Co $ _2 $的大气吸收特征由于其更大的大气高度而在低重力行星上更可检测到。在振荡状态下,高级云几乎静音了所有吸收特征,使大气成分难以表征。

In this study, we employ a cloud-resolving model (CRM) to investigate how gravity influences convection and clouds in a small-domain (96 km by 96 km) radiative-convective equilibrium (RCE). Our experiments are performed with a horizontal grid spacing of 1 km, which can resolve large (> 1 km$^2$) convective cells. We find that under a given stellar flux, sea surface temperature increases with decreasing gravity. This is because a lower-gravity planet has larger water vapor content and more clouds, resulting in a larger clear-sky greenhouse effect and a stronger cloud warming effect in the small domain. By increasing stellar flux under different gravity values, we find that the convection shifts from a quasi-steady state to an oscillatory state. In the oscillatory state, there are convection cycles with a period of several days, comprised of a short wet phase with intense surface precipitation and a dry phase with no surface precipitation. When convection shifts to the oscillatory state, water vapor content and high-level cloud fraction increase substantially, resulting in rapid warming. After the transition to the oscillatory state, the cloud net positive radiative effect decreases with increasing stellar flux, which indicates a stabilizing climate effect. In the quasi-steady state, the atmospheric absorption features of CO$_2$ are more detectable on lower-gravity planets because of their larger atmospheric heights. While in the oscillatory state, the high-level clouds mute almost all the absorption features, making the atmospheric components hard to be characterized.

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