Stochastic and dynamical models of sudden stratospheric warmings
Stochastic and dynamical models of sudden stratospheric warmings
批准号:
1777889
负责人:
金额:
$0.0万
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2016
资助国家:
英国
项目状态:
已结题
起止时间:
2016 至 --
中文摘要
研究领域:连续介质力学该项目的目的是研究平流层突然变暖的基本流体动力学,通过开发一系列捕获关键流体动力学过程的简化模型。平流层突然变暖(SSWs)是北半球冬季通常每两到三年发生一次的大气现象。它们涉及极地平流层温度在短短1-2天内迅速上升20-30K。在近70年的观测记录中,南半球也有过一次有记录的事件,发生在2002年。ssw对气候很重要,因为它被认为是温带平流层年际变率的主要来源,而且在过去二十年中,ssw已成为许多研究兴趣的主题,因为它们已被发现对北半球地表气候产生重大影响。ssw主要被理解为流体动力学现象。极地温度的快速上升是因为极地冷空气被困在一个被称为极地平流层涡旋的柱状结构中,在行星尺度波(罗斯比波)的作用下被从极地移走。当前项目的目的是将流体动力学的理解,特别是关于罗斯比波在涡旋上的传播,用于理解ssw发生的问题。我们将关注的关键问题是,在气候变化的情况下,ssw的频率可能会发生怎样的变化。该项目将通过开发ssw的简化模型层次来进行,每个模型都能捕获更多流体动力学行为的细节。考虑的最简单的模型是随机应变流中的椭圆涡。我们感兴趣的问题是,涡旋被拉长(“被拉长”)的概率如何取决于张力流的统计数据。这里的随机应变流表示动态活动对流层对平流层的影响,其统计量将随气候变化而变化。有趣的是,同样的模型也可以用来分析二维湍流中的涡旋寿命。层次结构中的下一个模型将是球体上的干燥原始方程模型,该模型将在更现实的环境中建立,以捕获对流层和平流层之间的基本流体动力学相互作用。将分析长积分的统计数据,以确定简单椭圆涡旋模型的见解是否有助于预测模式SSW发生的变化。将模型与观测到的行为进行比较,从而得出结论,以解释(a)预测的SSW频率变化,以及(b)不同未来情景之间行为的变化。
英文摘要
Research Area: Continuum MechanicsThe aim of the project is to investigate the fundamental fluid dynamics of sudden stratospheric warmings, by developing a range of simplified models capturing the key fluid dynamical processes involved.Sudden stratospheric warmings (SSWs) are atmospheric phenomena that typically occur every two to three years during the Northern hemisphere winter. They involve a rapid increase in polar stratospheric temperatures of 20-30K over a period of just 1-2 days. There has also been a single recorded event in the Southern hemisphere, from nearly 70 years of recorded observations, which took place in 2002. SSWs are important for climate because considered to be the main source of interannual variability in the extratropical stratosphere, and over the last two decades have been the subject of much research interest, because they have been discovered to significantly influence Northern Hemisphere surface climate.SSWs are understood to be primarily fluid dynamical phenomena. The rapid increase in polar temperatures occurs because cold polar air, which is trapped within a columnar structure known as the polar stratospheric vortex, is displaced from the pole by the action of planetary-scale waves (Rossby waves). The aim of the current project is to bring understanding from fluid dynamics, particularly concerning the propagation of Rossby waves on vortices, to bear on the problem of understanding the occurrence of SSWs. The key question we will be concerned with is how the frequency of SSWs might change in a changing climate.The project will proceed by developing a hierarchy of simplified models of SSWs, each of which captures more detail of the fluid dynamical behaviour. The simplest model considered will be that of an elliptical vortex in a random straining flow. The question of interest is how the probability that the vortex becomes elongated (`strained out') depends upon the statistics of the straining flow. The random straining flow here represents the influence of the dynamically active troposphere on the stratosphere, and its statistics will be subject to change in a changing climate. Interestingly, the same model can be used to analyse vortex lifetimes in two-dimensional turbulent flows. The next model in the hierarchy will be a dry primitive equation model on the sphere, which will be set up to capture the fundamental fluid dynamical interactions between troposphere and stratosphere in a more realistic setting. The statistics of long integrations will be analysed, to determine whether insights from the simple elliptical vortex model are useful for predicting changes in model SSW occurrence. Conclusions will be drawn from a comparison between the models and the observed behaviour, with a view to explaining (a) predicted changes in SSW frequency, and (b) variations in behaviour between different future scenarios.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
Noise-induced vortex-splitting stratospheric sudden warmings
噪声引起的涡旋分裂平流层突然变暖
DOI:
10.1002/qj.3443
发表时间:
2019
期刊:
Quarterly Journal of the Royal Meteorological Society
影响因子:
8.9
作者:
[Esler J]
通讯作者:
Esler J
DOI:
10.1175/jas-d-19-0232.1
发表时间:
2019-03
期刊:
Journal of the Atmospheric Sciences
影响因子:
3.1
作者:
[M. Mester;J. G. Esler]
通讯作者:
M. Mester;J. G. Esler
Control of the oscillations of the martian Northern Hemisphere polar vortex by the Hadley cell and topographic forcing
哈德来环流和地形强迫对火星北半球极涡振荡的控制
DOI:
10.1016/j.icarus.2022.115019
发表时间:
2022
期刊:
Icarus
影响因子:
3.2
作者:
[Mester M]
通讯作者:
Mester M
海外基金