热力学特性可变介质中的大规模流体力学流动

IF 0.9 4区 物理与天体物理 Q4 PHYSICS, FLUIDS & PLASMAS Plasma Physics Reports Pub Date : 2024-07-30 DOI:10.1134/S1063780X24600865
M. A. Yudenkova, D. A. Klimachkov, A. S. Petrosyan
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引用次数: 0

摘要

摘要 提出了一个关于旋转天体物理等离子体中大尺度流动的理论,该理论是在物理介质的非微观特性条件下提出的,经典的等离子体流体力学理论无法描述这些特性。作为第一步,该理论是在描述天体物理等离子体的中性流体模型中发展起来的,并考虑到磁效应的后续推广。这种模型对于研究星系中恒星形成区的湍流动力和电离度较差的磁盘中的流体力学不稳定性、描述低质量恒星和太阳对流区下方的子午流以及研究太阳和恒星的振荡都具有独立的重要性。因此,所获得的结果具有更广泛的应用,例如用于描述地球物理流。该理论基于等离子体天体物理学发展的两个关键思想:使用具有大尺度可压缩性的浅水模型和使用双层浅水模型。在考虑到旋转和流动球度对旋转的影响的情况下,推导出了两层浅水的方程,其中在上层考虑了大尺度可压缩性的影响。对于旋转系统,考虑到大尺度可压缩性,得到了两层浅水中波普卡雷波的频散关系;考虑到球度对旋转的影响,得到了高频极限下波普卡雷波的类似频散关系;在低频极限下,得到了罗斯比波的频散关系。研究表明,考虑到流动的球形性,Poincaré 波的频散关系具有质的不同形式,这导致了 Poincaré 波的三波相互作用以及两个 Poincaré 波与一个 Rossby 波的相互作用,这在可压缩流体的单层流动中是观察不到的。我们使用多尺度展开法研究了所考虑的流动的所有类型的三波相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Large-Scale Hydrodynamic Flows in Media with Variable Thermodynamic Characteristics

A theory of large-scale flows in a rotating astrophysical plasma under conditions of non-trivial properties of the physical medium, which are not described by the classical hydrodynamic theory of plasma, is developed. As a first step, the theory is developed within a neutral fluid model to describe astrophysical plasma, with a subsequent generalization in mind to take into account magnetic effects. Such a model is of independent importance for studying turbulent dynamo in star-forming regions in galaxies and hydrodynamic instabilities in poorly ionized disks, for describing meridional flows below convective zones in low-mass stars and on the Sun, as well as for studying oscillations of the Sun and stars. Therefore, the results obtained have a wider application, e.g., for describing geophysical currents. The theory is based on two key ideas developed in plasma astrophysics: the use of a shallow water model with large-scale compressibility and the use of a two-layer shallow water model. Equations for two-layer shallow water are derived taking into account rotation and the effect of flow sphericity on rotation, in which the effects of large-scale compressibility are taken into account in the upper layer. For a rotating system, dispersion relations are obtained for Poincaré waves in two-layer shallow water, taking into account large-scale compressibility; similar dispersion relations for Poincaré waves are obtained in the high-frequency limit taking into account the effect of sphericity on rotation; in the low-frequency limit, a dispersion relation is obtained for Rossby waves. It is shown that the dispersion relations for Poincaré waves, taking into account the sphericity of the flow, have a qualitatively different form, which leads to three-wave interactions of Poincaré waves and the interaction of two Poincaré waves with a Rossby wave, which are not observed in a single-layer flow of a compressible fluid. All types of three-wave interactions for the flows under consideration are studied using the method of multiscale expansions.

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来源期刊
Plasma Physics Reports
Plasma Physics Reports 物理-物理:流体与等离子体
CiteScore
1.90
自引率
36.40%
发文量
104
审稿时长
4-8 weeks
期刊介绍: Plasma Physics Reports is a peer reviewed journal devoted to plasma physics. The journal covers the following topics: high-temperature plasma physics related to the problem of controlled nuclear fusion based on magnetic and inertial confinement; physics of cosmic plasma, including magnetosphere plasma, sun and stellar plasma, etc.; gas discharge plasma and plasma generated by laser and particle beams. The journal also publishes papers on such related topics as plasma electronics, generation of radiation in plasma, and plasma diagnostics. As well as other original communications, the journal publishes topical reviews and conference proceedings.
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