振荡粗糙地形产生的内波场

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL Experiments in Fluids Pub Date : 2024-11-25 DOI:10.1007/s00348-024-03928-4
Natasha Wilson, Julie Crockett
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引用次数: 0

摘要

通过实验探索了在分层介质中具有一系列海脊的振荡地形所产生的内波。实验代表了海洋中的振荡潮汐流,全球环流模型无法完全解析地形上的小尺度粗糙度,但产生的内波场会影响全球混合和海洋动力学。在这里,通过在原始地形上加入不同数量的脊,其斜率相当于完整地形的边缘斜率,来评估地形粗糙度的影响。具体来说,将宽阔高原形状产生的内波场与在高原上覆盖三至六条高斯山脊的相同形状进行比较。在所有情况下,都能观察到每个山脊产生的复杂内波模式。然而,结果表明,随着脊的数量或宽度增加,靠近高原中心的脊产生的波衰减得非常快,在远场,内波场与光滑高原产生的内波场没有区别。我们提出了一个非维数,它既考虑了脊的数量和整体地形宽度,又定义了一个极限,在这个极限上,预计会产生类似高原的内波,这种形式的表面粗糙度可以忽略不计。
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Internal wave field generated by oscillating rough topography

Internal waves generated by oscillating topography with a series of ridges in a stratified medium are experimentally explored. Experiments represent oscillating tidal flow in the ocean where small-scale roughness on topography cannot be fully resolved in global circulation models, but the generated internal wave field can impact global mixing and ocean dynamics. Here, the influence of topography roughness is evaluated by including different numbers of ridges, with slopes equivalent to the edge slope of the full topography, on top of the original topography. Specifically, the internal wave field generated by a wide plateau shape is compared with the same shape except with three to six Gaussian ridges overlain on the plateau. In all scenarios, a complex pattern of internal waves generated by each ridge is observed. However, the results show as the number or width of ridges increases, the waves generated by the ridges near the center of the plateau decay very quickly and in the far field the internal wave field is indistinguishable from that generated by a smooth plateau. A non-dimensional number is suggested that accounts for both the number of ridges and overall topography width while defining a limit for which plateau-like internal wave generation is expected and this form of surface roughness may be neglected.

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来源期刊
Experiments in Fluids
Experiments in Fluids 工程技术-工程:机械
CiteScore
5.10
自引率
12.50%
发文量
157
审稿时长
3.8 months
期刊介绍: Experiments in Fluids examines the advancement, extension, and improvement of new techniques of flow measurement. The journal also publishes contributions that employ existing experimental techniques to gain an understanding of the underlying flow physics in the areas of turbulence, aerodynamics, hydrodynamics, convective heat transfer, combustion, turbomachinery, multi-phase flows, and chemical, biological and geological flows. In addition, readers will find papers that report on investigations combining experimental and analytical/numerical approaches.
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