旋转体空腔中的流体动力学:分析解决方案综述

IF 1.5 Q2 PHYSICS, MULTIDISCIPLINARY Physics Pub Date : 2024-03-19 DOI:10.3390/physics6010029
A. A. Gurchenkov, Ivan A. Matveev
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引用次数: 0

摘要

自 20 世纪中叶以来,人们开始了解我们周围自然磁流体动力学现象的多样性。磁流体动力学的本质体现在世界海洋中的水流、地球液态内核的运动、太阳磁层和银河系电磁场的动态等看似异质的过程中。它们之间的密切关系和对人类生活的多方面影响正变得越来越清晰。研究这些现象需要发展基础理论和分析理论,既要统一各种现象,又要发展描述特定过程的专门领域。平移流体运动的理论已经发展得很成熟,但对于大多数自然现象来说,这种情况导致了一个相当有限的模型。对于科里奥利力作用显著的旋转体空腔中的流体运动,研究要少得多。所考虑问题的一个显著特点是其明显的非线性(即缺乏线性近似,无法获得非微不足道的有用结果)。从这个角度出发,我们选择了本文介绍的研究。本综述介绍了在不考虑电磁现象(非导电、非磁性流体)和考虑电磁现象(导电流体)的情况下对理想流体和粘性流体运动的研究。位于地球磁场中的海水(导电液体)的宏观运动备受关注,它产生了电流,并因此产生了感应磁场。在具有分布式参数的动态系统框架内,探索导电液体运动湍流中磁场的产生过程,可以更好地理解宇宙磁场(行星、恒星和星系的磁场)的起源。针对旋转运动和湍流运动提出了各种方法。特别是,介绍了平面平行配置问题的三维非稳态磁流体动力学方程的解析解。
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Dynamics of Fluids in the Cavity of a Rotating Body: A Review of Analytical Solutions
Since the middle of the 20th century, an understanding of the diversity of the natural magnetohydrodynamic phenomena surrounding us has begun to emerge. Magnetohydrodynamic nature manifests itself in such seemingly heterogeneous processes as the flow of water in the world’s oceans, the movements of Earth’s liquid core, the dynamics of the solar magnetosphere and galactic electromagnetic fields. Their close relationship and multifaceted influence on human life are becoming more and more clearly revealed. The study of these phenomena requires the development of theory both fundamental and analytical, unifying a wide range of phenomena, and specialized areas that describe specific processes. The theory of translational fluid motion is well developed, but for most natural phenomena, this condition leads to a rather limited model. The fluid motion in the cavity of a rotating body such that the Coriolis forces are significant has been studied much less. A distinctive feature of the problems under consideration is their significant nonlinearity, (i.e., the absence of a linear approximation that allows one to obtain nontrivial useful results). From this point of view, the studies presented here were selected. This review presents studies on the movements of ideal and viscous fluids without taking into account electromagnetic phenomena (non-conducting, non-magnetic fluid) and while taking them into account (conducting fluid). Much attention is payed to the macroscopic movements of sea water (conducting liquid) located in Earth’s magnetic field, which spawns electric currents and, as a result, an induced magnetic field. Exploring the processes of generating magnetic fields in the moving turbulent flows of conducting fluid in the frame of dynamic systems with distributed parameters allows better understanding of the origin of cosmic magnetic fields (those of planets, stars, and galaxies). Various approaches are presented for rotational and librational movements. In particular, an analytical solution of three-dimensional unsteady magnetohydrodynamic equations for problems in a plane-parallel configuration is presented.
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来源期刊
Physics
Physics PHYSICS, MULTIDISCIPLINARY-
CiteScore
3.00
自引率
6.20%
发文量
0
审稿时长
10 weeks
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