层状粘性流体中运动物体背后三维内波的形成

IF 1 4区 工程技术 Q4 MECHANICS
P. V. Matyushin
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引用次数: 0

摘要

研究了静止分层粘性流体中圆盘沿其对称轴在水平方向上的均匀运动。圆盘产生的三维内部重力波占据了圆盘和其起始位置之间的整个体积。在Boussinesq近似的Navier-Stokes方程组的框架内计算的涡旋流结构的双色、β - +可视化观察了这些波。该研究的结果在很大程度上完成了先前发表的在圆盘对称轴上方形成半波的机制,其中重点放在了在圆盘开始位置上方产生变形涡环的周期性过程。它们的产生是由于引力和剪切的不稳定性,当左半环转变为半波的洼地或波峰时,而右半环随着时间的推移而消失。本文建立了将右奇半环的左部分转化为波峰半波的轴向部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Formation of Three-Dimensional Internal Waves behind a Body in Motion in a Stratified Viscous Fluid

Formation of Three-Dimensional Internal Waves behind a Body in Motion in a Stratified Viscous Fluid

A uniform motion of a disk in horizontal direction along its axis of symmetry in a stratified viscous fluid at rest is studied. The disk generates three-dimensional internal gravity waves occupying the entire volume between the disk and the location of its start. The waves are observed using two-color, beta-plus visualization of the vortex flow structure calculated within the framework of the system of Navier–Stokes equations in the Boussinesq approximation. The results of the study complete considerably the earlier-published mechanism of the formation of half-waves above the axis of symmetry of the disk, where emphasis was placed on the periodic process of generation of deformed vortex rings above the location of the disk start. Their generation is due to gravitation and shear instabilities, when the left semi-ring is transformed into a half-wave of depressions or crests, while the right one vanishes with time. In this paper it is established that the left parts of the right odd semi-rings are transformed into the axial parts of the crest half-waves.

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来源期刊
Fluid Dynamics
Fluid Dynamics MECHANICS-PHYSICS, FLUIDS & PLASMAS
CiteScore
1.30
自引率
22.20%
发文量
61
审稿时长
6-12 weeks
期刊介绍: Fluid Dynamics is an international peer reviewed journal that publishes theoretical, computational, and experimental research on aeromechanics, hydrodynamics, plasma dynamics, underground hydrodynamics, and biomechanics of continuous media. Special attention is given to new trends developing at the leading edge of science, such as theory and application of multi-phase flows, chemically reactive flows, liquid and gas flows in electromagnetic fields, new hydrodynamical methods of increasing oil output, new approaches to the description of turbulent flows, etc.
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