Numerical study on internal waves generated by a submerged body moving in two types of stratified fluids

IF 4.3 2区 工程技术 Q1 ENGINEERING, OCEAN
Xuebin Chen , Shuqun Cai , Jiexin Xu , Shuyan Deng
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引用次数: 0

Abstract

A numerical model is employed to simulate the internal waves generated by a moving submerged body in stratified fluids through the joint solution of the Navier-Stokes equations and the density transport equation. It is found the generation of internal waves begins with the formation of elevation and depression regions at the front and rear ends of the submerged body. As the body moves, more pairs of elevation and depression regions emerge in the wake, progressively leading to the full evolution of divergent and transverse wave features. Internal waves generated in two types of stratified fluids are compared, inferring the similarity of internal waves between two stratified fluids is not restricted to a specific depth but is consistently observed across all depths, and this similarity encompasses main flow characteristics, including internal wave surface fluctuation, pressure, and velocity components. However, an equivalent of Froude number, Fr, is only a necessary condition for the similarity, which does not guarantee the similarity between cases with different density stratifications. A water depth-based Froude number, Fr’(z), is proposed in this paper to investigate similarity. It has been shown that similarity is ensured when the Fr’(z) values of these cases are equal at any water depth.
沉体在两种层状流体中运动产生内波的数值研究
通过Navier-Stokes方程和密度输运方程的联合解,建立了一个数值模型,模拟了层状流体中运动潜水体产生的内波。研究发现,内波的产生始于淹没体前后端高洼区域的形成。随着身体的移动,尾迹中出现了更多的高洼区,逐渐导致发散波和横波特征的充分演变。比较了两种层状流体中产生的内波,可以推断出两种层状流体之间内波的相似性并不局限于特定的深度,而是在所有深度都一致地观察到,这种相似性包括主要的流动特征,包括内波表面波动、压力和速度分量。但是,等价的弗劳德数Fr只是相似性的必要条件,并不能保证不同密度分层情况之间的相似性。本文提出了一个基于水深的弗劳德数Fr ' (z)来研究相似度。研究表明,当这些情况的Fr′(z)值在任何水深相等时,相似性得到保证。
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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