Staircase Formation in Fluid Dynamical Systems
Staircase Formation in Fluid Dynamical Systems
批准号:
2296225
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --
中文摘要
某些流体动力学系统最有趣的特征之一是它们倾向于形成层或“楼梯”,其中一个关键的物理量,如密度,呈现出具有深度的楼梯结构,而不是像人们所期望的那样更平滑地分布。这种现象发生在物理上看起来相当不同的系统中,因此一个有趣的研究问题是,在这些不同的系统中,分层的基本物理原理是否相同。了解楼梯的形成不仅是内在的科学兴趣,但对于理解湍流传输是至关重要的。分层和非分层系统有非常不同的传输特性,因此,它是必不可少的了解的过程,以便湍流传输可以在大型海洋或大气models.In大气和海洋的背景下,现实的参数化有两个特定的系统的利益,是众所周知的,是容易分层。一种是双扩散对流;在海洋中,关键的量是热量和盐,它们以非常不同的速度扩散-这个过程被称为温盐对流或热溶质对流。然后,对流可以由具有稳定热梯度的不稳定溶质梯度(发生在温暖的海洋中)驱动,或者由具有稳定溶质梯度的不稳定热梯度(发生在较冷的海洋中的情况)驱动。在这两种情况下,观察到的密度呈现阶梯结构,这似乎是非常有弹性的。有趣的是,类似的过程被认为在恒星核心中很重要,在那里竞争的元素是热量和成分梯度。在大气中起作用的另一个分层过程是位涡层(阶梯)的形成,这表现为强喷流的出现。这一过程不仅与我们的大气层有关,也与木星大气层的外层有关,木星大气层的特征是强烈的带状结构。该项目将通过简化的模型探索楼梯形成的整个性质-形成楼梯所需的物理成分,最初形成楼梯的规模,以及随后的楼梯合并是如何发生的。模型方程至少在最初是一个空间方向(例如,对于温盐对流的情况,高度)和时间上的非线性偏微分方程。这些将比三维流体动力学的完整方程更简单,但仍然允许详细分析和理解提供分层到底需要什么。该项目将涉及分析和渐近方法的结合,以及模型方程的数值解。
英文摘要
One of the most interesting features of certain fluid dynamical systems is their tendency to form layers or "staircases", in which a key physical quantity, such as the density, exhibits a staircase structure with depth, rather than being more smoothly distributed as one might expect. This phenomenon occurs in systems that appear to be rather different physically, and so a research question of some interest is whether, at heart, the underlying physics of layering is the same in these different systems. Understanding staircase formation is not only of intrinsic scientific interest but is vital to understanding turbulent transport. Layered and unlayered systems have very different transport properties; thus it is essential to understand the process in order that turbulent transport can be realistically parameterised in large oceanographic or atmospheric models.In the context of atmospheres and oceans there are two particular systems of interest that are known to be susceptible to layering. One is double-diffusive convection; in the oceans the key quantities are heat and salt, which diffuse at very different rates - the process is then known as thermohaline or thermosolutal convection. Convection can then be driven either by an unstable solutal gradient with a stable thermal gradient (which occurs in warmer oceans) or, alternatively, by an unstable thermal gradient with a stable solutal gradient (the situation in colder oceans). In both these cases, the density is observed to take on a staircase structure, which appears to be remarkably resilient. Interestingly, a similar process is believed to be of importance in stellar cores, where the competing elements are heat and a compositional gradient. The other layering process at work in the atmosphere is that of the formation of layers (staircases) in potential vorticity, which is manifested by the appearance of strong jets. This process is relevant not only for our own atmosphere, but also for the outer layers of Jupiter's atmosphere, which is characterised by a strongly banded structure.This project will explore, through simplified models, the entire nature of staircase formation - the physical ingredients necessary for their formation, the scale at which they initially form, and how subsequent staircase mergers occur. The model equations will, initially at least, be nonlinear partial differential equations in one spatial direction (height, for example, for the case of thermohaline convection) and time. These will be simpler than the full equations of three-dimensional fluid dynamics, but will nonetheless allow a detailed analysis and understanding of what exactly is needed to provide layering. The project will involve a combination of analytical and asymptotic approaches, together with numerical solutions of the model equations.
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国内基金
海外基金
The formation and evolution of planetary systems in dense star clusters
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批准号:11043007
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项目类别:专项基金项目
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资助金额:10.0万元
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批准年份:2010
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负责人:柯文采
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依托单位: