论文标题
陆地行星上具有季节性周期的极地涡流的动力学机制
Dynamical regimes of polar vortices on terrestrial planets with a seasonal cycle
论文作者
论文摘要
极性涡旋是环绕中部或高纬度的杆子的常见行星流,并且在大多数太阳系的行星大气中都观察到。地球,火星和泰坦的极性涡流与平均子午循环动态相关,并表现出明显的季节性周期。但是,三个行星之间的极性涡流的特性各不相同。为了了解影响极性涡流动力学和对行星参数的依赖性的机制,我们使用理想化的一般循环模型,其中具有季节性周期,在该模型中我们改变了斜率,旋转速率和轨道周期。我们发现,在参数空间中,极地涡流季节周期存在不同的方案。某些机制与观察到的极性涡流相似,包括以缓慢的旋转速率在仲冬期间的极性涡流减弱,类似于泰坦的极性涡流。但是,参数空间中发现的其他机制在太阳系中没有对应。此外,我们表明,对于参数空间的很大一部分,涡流的潜在涡度纬度结构是环形的,类似于火星和泰坦上观察到的极性涡流的结构。我们还发现在仲冬期间对风暴活动的抑制类似于在火星和地球上观察到的抑制,这发生在射流速度大于〜60 ms $^{ - 1} $的模拟中。这种与观察到的极性涡具有相似之处的各种极性涡流动力学制度表明,在系超极性涡流中,极性涡流可能存在广泛的差异。
Polar vortices are common planetary flows that encircle the pole in the middle or high latitudes, and are observed on most of the solar systems' planetary atmospheres. The polar vortices on Earth, Mars, and Titan are dynamically related to the mean meridional circulation and exhibits a significant seasonal cycle. However, the polar vortex's characteristics vary between the three planets. To understand the mechanisms that influence the polar vortex's dynamics and dependence on planetary parameters, we use an idealized general circulation model with a seasonal cycle in which we varied the obliquity, rotation rate, and orbital period. We find that there are distinct regimes for the polar vortex seasonal cycle across the parameter space. Some regimes have similarities to the observed polar vortices, including a weakening of the polar vortex during midwinter at slow rotation rates, similar to Titan's polar vortex. However, other regimes found within the parameter space have no counterpart in the solar system. In addition, we show that for a significant fraction of the parameter space, the vortex's potential vorticity latitudinal structure is annular, similar to the observed structure of the polar vortex on Mars and Titan. We also find a suppression of storm activity during midwinter that resembles the suppression observed on Mars and Earth, which occurs in simulations where the jet speed is greater than ~60 ms$^{-1}$. This wide variety of polar vortex dynamical regimes that shares similarities to observed polar vortices suggests that among exoplanets, there can be a wide variability of polar vortices.