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Collaborative Research: Conservation Laws, Simple Waves and Mixing in Stratified Fluids

Collaborative Research: Conservation Laws, Simple Waves and Mixing in Stratified Fluids
合作研究:守恒定律、简单波和分层流体中的混合
批准号:
0908252
负责人:
Esteban Tabak
金额:
$34.48万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-06-01 至 2013-05-31

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项目成果

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中文摘要
翻译
该奖项是根据2009年美国复苏和再投资法案(公法111-5)资助的。大气和海洋在密度上是分层的,背景流动经常发生剪切性变化。密度的变化使内波--波在流体内部--传播,而不是在其表面。当这些波传播时,它们会变形和破裂,当它们这样做时,它们会混合不同密度的流体,改变它们传播的介质。一种竞争效应是由剪切不稳定性产生的混合。该项目将开发一种数学方法来研究完全非线性剪切分层流动的演化,目的是了解导致流体混合的动力学并对其进行建模。波和切变产生的混合将用有限和无限多守恒律系统理论中的工具来处理。我们将计算和研究破碎系统的精确非线性解,特别是简单波,混合型系统的非线性稳定性的一般判据,以及基于粗粒混合熵最大化的不完整系统的统计描述。这项研究涉及大气和海洋流动中的波的传播和切变的动力学,以及这些现象如何混合它们所在的流体。地球物理流的混合是气候动力学的一个重要组成部分。例如,海水的混合速度决定了表面的温度,而表面的温度直接与大气沟通,影响我们的天气和气候。另一方面,化学物质、二氧化碳和水在大气中的扩散和混合对辐射平衡产生了深远的影响,从而导致了对气候变化的预测。波也是大气遥相关的一个因素:它们可以产生长距离影响,因为它们携带的能量远距离传输,而不传输流体本身。由于发生波动和混合过程的长度尺度太小和太快,不能与行星尺度的流动一起计算,所以它们现在由使用简单标准的少量聚集参数(参数化)来表示。对动力学和混合过程的更好理解将改进这些参数化和使用它们的气候模型的可靠性。
英文摘要
This award is funded under the American Recovery and Reinvestment Act of 2009 (Public Law 111-5).The atmosphere and the ocean are stratified in the density and background flows are often sheared. The variation of density enables the propagation of internal waves - waves in the interior of the fluid - not on its surface. These waves, as they propagate, can deform and break and, when they do, they mix fluid of different densities, changing the medium in which they propagate. A competing effect is mixing engendered by shear instabilities. This project will develop a mathematical methodology for the study of the evolution of fully nonlinear sheared, stratified flows, with the goal to understand and model the dynamics leading to fluid mixing. The wave and shear-generated mixing will be addressed with tools in the theory of systems of finite and infinitely many conservation laws. We shall calculate and study exact nonlinear solutions that break - especially simple waves of the system, general criteria for the nonlinear stability of systems of mixed type, and the statistical description of incomplete systems, based on the maximization of a coarse-grained mixing entropy.This research is concerned with the propagation of waves and the dynamics of shear in atmospheric and oceanic flows and how these phenomena mix the fluid in which they exist. Mixing in geophysical flows is a crucial component of climate dynamics. The rate of mixing of ocean waters, for instance, determines the temperature at the surface, which communicates directly with the atmosphere, affecting our weather and climate. The dispersion and mixing of chemicals, carbon dioxide and water in the atmosphere, on the other hand, has a profound effect on the radiative balance leading to predictions for climate change. Waves are also an element of atmospheric teleconnection: they can have long range effects since they carry energy over long distances without transporting the fluid itself. Since the length scales in which the waves and the mixing processes occur are too small and fast to be computed together with planetary scale flows, they are nowadays represented by a low number of aggregate parameters (parameterized) using simple criteria. A better understanding of the dynamics and mixing processes will improve these parameterizations and the reliability of the climate models that use them.
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Explanation of Variability through Optimal Transport
  • 批准号:
    1715753
  • 项目类别:
    Standard Grant
  • 资助金额:
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  • 财政年份:
    2017
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  • 财政年份:
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Collaborative Research: Stability, Wave Breaking and Mixing in Stratified Flows
  • 批准号:
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  • 财政年份:
    2004
  • 负责人:
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