论文标题
大气循环在trappist-1e上的双重性
Bistability of the atmospheric circulation on TRAPPIST-1e
论文作者
论文摘要
使用3D一般循环模型,我们证明了已确认的岩石外球星和主要的观察目标,Trappist-1E提出了一个有趣的气候双重性案例。我们发现,trappist-1E上的大气循环可以在两个不同的方向上存在于1 〜Bar氮为主的大气中。一个特征在于单个强赤道前射流和夜间夜间差异很大。另一个的特征是一对中纬度的前列喷射和相对较小的昼夜对比度。循环系统似乎对模型设置高度敏感,包括初始和表面边界条件,以及对流和云辐射效应的物理参数化。我们着重于模拟的早期阶段大气循环的出现,并表明该制度的双重性与区域不对称加热,平均倾覆循环和中纬度斜斜线不稳定性之间的微妙平衡有关。这些过程的相对强度将GCM模拟放在大气动力学演变的不同分支上。两种制度的最终稳态在水含量和云的量上具有一致的差异,影响了吸水带以及传输频谱中的连续性水平,尽管它们太小,无法用当前技术检测到。然而,这种制度的双重性会影响地表温度,尤其是在地球的夜晚,并提出了一个有趣的案例,可以理解大气动力学并突出显示3D GCM结果中的不确定性,从而激发了更多的多模型研究。
Using a 3D general circulation model, we demonstrate that a confirmed rocky exoplanet and a primary observational target, TRAPPIST-1e presents an interesting case of climate bistability. We find that the atmospheric circulation on TRAPPIST-1e can exist in two distinct regimes for a 1~bar nitrogen-dominated atmosphere. One is characterized by a single strong equatorial prograde jet and a large day-night temperature difference; the other is characterized by a pair of mid-latitude prograde jets and a relatively small day-night contrast. The circulation regime appears to be highly sensitive to the model setup, including initial and surface boundary conditions, as well as physical parameterizations of convection and cloud radiative effects. We focus on the emergence of the atmospheric circulation during the early stages of simulations and show that the regime bistability is associated with a delicate balance between the zonally asymmetric heating, mean overturning circulation, and mid-latitude baroclinic instability. The relative strength of these processes places the GCM simulations on different branches of the evolution of atmospheric dynamics. The resulting steady states of the two regimes have consistent differences in the amount of water content and clouds, affecting the water absorption bands as well as the continuum level in the transmission spectrum, although they are too small to be detected with current technology. Nevertheless, this regime bistability affects the surface temperature, especially on the night side of the planet, and presents an interesting case for understanding atmospheric dynamics and highlights uncertainty in 3D GCM results, motivating more multi-model studies.