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Turbulent mixing at the surface of natural water bodies: Breaking waves and Langmuir circulations.

机译:天然水体表面的湍流混合:破碎波和朗缪尔环流。

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摘要

A laboratory and field investigation of mixing and turbulence in the surface-wave zone, and specifically, the role played by breaking waves and Langmuir circulations is presented.; Breaking waves are believed to be a significant source of mixing of surface boundary layer of the oceans. We show in both the laboratory and the field that, with acoustical instrumentation, it is possible to directly resolve part of the inertial subrange in the turbulence generated by breaking events. This technique permits the measurement of the turbulent kinetic energy dissipation without invoking Taylor's hypothesis. The results show enhanced levels of dissipation when compared to the classical wall-layer scaling. In addition the turbulence under breaking waves is highly localized and decays very rapidly. We also present an investigation of the generation and evolution of surface waves and Langmuir circulations. In the laboratory, experiments using a variety of modern flow visualization techniques show that the classical wave generation problem is accompanied by phenomena that occur over comparable time and length scales. Of interest is the generation of Langmuir circulations which provide the transition to turbulence of the accelerating surface flow. During this transition, the surface skin layer is disrupted thus enhancing heat and gas transfer. In addition, a large fraction of momentum is mixed from the surface to depth by the circulations, at rates greater than those of viscous transport. We subsequently show that the wave field is strongly modulated by the Langmuir circulations. Thus, the stability of the wind-driven surface flow involves multiple interacting phenomena, rendering the problem both rich and intricate. Field observations confirm that small-scale Langmuir circulations occur in the field as well, at least under low wind-speed conditions. The data acquired in both the laboratory and the field show that these phenomena play an important role in the mixing of the upper layers of natural water bodies and in small-scale air-sea interaction in general.
机译:在实验室和野外调查中,研究了表面波区域的混合和湍流,特别是破碎波和朗缪尔环流所起的作用。破碎波被认为是海洋表面边界层混合的重要来源。我们在实验室和现场都表明,借助声学仪器,可以直接解决由突发事件产生的湍流中的惯性子范围的一部分。该技术无需引用泰勒的假设就可以测量湍动能的耗散。结果表明,与经典的墙层缩放相比,耗散水平提高了。另外,在破碎波下的湍流高度局限并且非常迅速地衰减。我们还介绍了表面波和朗缪尔环流的产生和演化。在实验室中,使用各种现代流动可视化技术进行的实验表明,经典的波浪产生问题伴随着在相当的时间和长度范围内发生的现象。令人感兴趣的是朗格缪尔循环的产生,该循环提供了向加速表面流湍流的过渡。在此过渡过程中,表面皮肤层被破坏,从而增强了热量和气体的传递。另外,很大的动量通过循环从表面到深度混合,其速率大于粘性传输的速率。随后我们表明,波场受到朗缪尔环流的强烈调制。因此,风力驱动的地表水流的稳定性涉及多种相互作用的现象,使问题变得既复杂又复杂。野外观察证实,至少在低风速条件下,野外也会发生小规模的朗缪尔环流。在实验室和现场获得的数据表明,这些现象在天然水体上层的混合以及小规模海-气相互作用中起着重要作用。

著录项

  • 作者

    Veron, Fabrice.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Physical Oceanography.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 331 p.
  • 总页数 331
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 海洋物理学;
  • 关键词

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