湍流微极流体作为具有内涡结构的连续介质

IF 0.8 4区 物理与天体物理 Q4 ASTRONOMY & ASTROPHYSICS
A. V. Kolesnichenko
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引用次数: 0

摘要

基于扩展不可逆热力学形式的应用,考虑了微极可压缩流体发达湍流的现代热力学建模方法。湍流流体的湍流运动在广义连续统模型的框架内进行描述,该模型由两个相互连接的开放子系统-平均运动子系统和湍流混沌子系统(与流体的小尺度涡旋运动相关)组成。这使得利用广义Gibbs方程和熵通量的一般形式,建立基于非线性湍流传递本构方程的演化双曲二阶闭包模型成为可能。所提出的方法与A.N. Kolmogorov关于如果微分网格的规模超过中涡旋的大小,将角速度伪向量表示为热力学开放湍流系统的内部参数的可能性的想法很好地一致。正是考虑到这一点,才有可能开发出反映湍流中涡旋内部旋转影响的连续湍流方程,以及具有涡旋性质的各向异性湍流的情况,这与雷诺兹张量的非零反对称部分有关。所得结果可用于研究恒星、巨行星以及太阳和其他天体大气中微极流体的湍流运动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Turbulent Micropolar Fluid as a Continuous Medium with an Internal Vortex Structure

A modern approach to thermodynamic modeling of developed turbulent flows of micropolar compressible fluid is considered, based on the application of the formalism of extended irreversible thermodynamics. The description of turbulent motion of turbulent fluid is carried out within the framework of the generalized continuum model consisting of two interconnected open subsystems—the averaged motion subsystem and the turbulent chaos subsystem (associated with small-scale vortex motion of the fluid). This made it possible to construct an evolutionary hyperbolic second-order closure model based on nonlinear constitutive equations of turbulent flow transfer using the generalized Gibbs equation and the general form of the entropy flux. The proposed methodology is in good agreement with the idea of A.N. Kolmogorov on the possibility of representing the pseudovector of angular velocity as an internal parameter for a thermodynamically open turbulent system if the scale of the differential grid exceeds the size of the mesovortices. It is this consideration that made it possible to develop continuous equations of turbulence that reflect the effect of internal rotation of turbulent mesovortices, as well as the case of a turbulent fluid with anisotropy of a vortex nature, which is related to the nonzero antisymmetric part of the Reynolds tensor. The results obtained can be used in studying the turbulent motions of micropolar fluids in the depths of stars, giant planets, as well as in the atmosphere of the Sun and other cosmic bodies.

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来源期刊
Solar System Research
Solar System Research 地学天文-天文与天体物理
CiteScore
1.60
自引率
33.30%
发文量
32
审稿时长
6-12 weeks
期刊介绍: Solar System Research publishes articles concerning the bodies of the Solar System, i.e., planets and their satellites, asteroids, comets, meteoric substances, and cosmic dust. The articles consider physics, dynamics and composition of these bodies, and techniques of their exploration. The journal addresses the problems of comparative planetology, physics of the planetary atmospheres and interiors, cosmochemistry, as well as planetary plasma environment and heliosphere, specifically those related to solar-planetary interactions. Attention is paid to studies of exoplanets and complex problems of the origin and evolution of planetary systems including the solar system, based on the results of astronomical observations, laboratory studies of meteorites, relevant theoretical approaches and mathematical modeling. Alongside with the original results of experimental and theoretical studies, the journal publishes scientific reviews in the field of planetary exploration, and notes on observational results.
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