改进海水近似能量和热力学的简单而透明的方法:静态能量渐近法(SEA)

IF 3.1 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Rémi Tailleux , Thomas Dubos
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引用次数: 0

摘要

静态能量包含了分层地球物理流体的热力学和势能(以及所有相关力)的所有可能信息。在本文中,我们开发了一种称为静态能量渐近的系统方法,利用这一特性构建能量和热力学一致的运动方程近似。通过对静态能量进行不同精度的近似,(重新)推导并讨论了两大近似系列:伪不可压缩(PI)近似和无弹性(AN)近似。对于所有近似方法,背景能量和可用势能(洛伦兹意义上的)都可以尽可能地与精确的对应能量相匹配,并且可以用精确的(而不是临时的)热力学势能来表示。对于静水运动,AN 近似(布西内斯克近似是其特例)与传统的海水布西内斯克原始方程具有相同的结构。因此,这些模型的能量学可以透明地追溯到完整的纳维-斯托克斯方程,几乎不需要额外费用,从而可以充分利用作为新的海水热力学标准 TEOS-10 的一部分而开发的吉布斯海水(GSW)库。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A simple and transparent method for improving the energetics and thermodynamics of seawater approximations: Static energy asymptotics (SEA)

The static energy encodes all possible information about the thermodynamics and potential energy (and all related forces) of stratified geophysical fluids. In this paper, we develop a systematic methodology, called static energy asymptotics, that exploits this property for constructing energetically and thermodynamically consistent sound-proof approximations of the equations of motion. By approximating the static energy to various orders of accuracy, two main families of approximations are (re-)derived and discussed: the pseudo-incompressible (PI) approximation and the anelastic (AN) approximation. For all approximations, the background and available potential energies (in Lorenz sense) can be constructed to match their exact counterparts as closely as feasible and to be expressible in terms of the exact (as opposed to ad-hoc) thermodynamic potentials. For hydrostatic motions, the AN approximation (of which the Boussinesq approximation is a special case) has the same structure as that of legacy Seawater Boussinesq primitive equations. The energetics of such models could therefore be made transparently traceable to that of the full Navier–Stokes equations at little to no additional cost, thus allowing them to take full advantage of the Gibbs Sea Water (GSW) library developed as part of the new thermodynamic standard for seawater TEOS-10.

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来源期刊
Ocean Modelling
Ocean Modelling 地学-海洋学
CiteScore
5.50
自引率
9.40%
发文量
86
审稿时长
19.6 weeks
期刊介绍: The main objective of Ocean Modelling is to provide rapid communication between those interested in ocean modelling, whether through direct observation, or through analytical, numerical or laboratory models, and including interactions between physical and biogeochemical or biological phenomena. Because of the intimate links between ocean and atmosphere, involvement of scientists interested in influences of either medium on the other is welcome. The journal has a wide scope and includes ocean-atmosphere interaction in various forms as well as pure ocean results. In addition to primary peer-reviewed papers, the journal provides review papers, preliminary communications, and discussions.
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