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Flow near the sea surface: Steady currents and Langmuir circulations.

机译:海面附近的水流:稳定的水流和朗缪尔环流。

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摘要

The current system in the upper ocean is studied by developing and solving a system of equations governing the temporally averaged current system. In the theory, a perturbation expansion procedure is applied to derive this set of equations. In contrast to previous theoretical investigations, we include Coriolis effects, and we employ a second order turbulence closure scheme instead of a constant eddy viscosity model to treat the turbulent stresses. Using this model, the study of wind driven steady currents, the linear instability of the steady current, and the nonlinear evolution of Langmuir circulations are incorporated into an integrated investigation.;In studying the wind driven currents, a nonlinear two point boundary value problem is solved numerically. The mass transport velocity is obtained as the sum of a turbulent version of the Ekman spiral and a Stokes drift. The computed surface mass transport velocity is roughly equal to the three percent of the wind speed generally quoted in the observational literature, and is approximately 10;A linear instability analysis is performed by solving a generalized eigenvalue problem. The results show that the Coriolis effect causes the most unstable Langmuir circulation modes to be three-dimensional and unsteady. The computed Langmuir vortices are aligned a few degrees to the right of the wind direction and travel slightly to the right of the cross wind direction. This motion agrees with observations.;The finite amplitude development of Langmuir cells is studied by integrating a system of nonlinear equations using a pseudospectral method. The following results are obtained: a surface downwind jet is formed over regions of subsurface downwelling, with the downwind current anomaly up to 10 cm ;The upper ocean current system is influenced by the wind, surface waves, the Coriolis force, and turbulence effects. Our study shows that all of these influences must be incorporated in a theoretical model to achieve satisfactory agreement with in situ measurements.
机译:通过开发和求解一个控制时间平均海流系统的方程组来研究上层海洋的海流系统。在理论上,采用摄动展开程序来推导这组方程。与以前的理论研究相反,我们包括科里奥利效应,并且我们采用二阶湍流闭合方案代替了恒定涡流粘度模型来处理湍流应力。使用该模型,将风动力稳态电流的研究,稳态电流的线性不稳定性以及朗缪尔环流的非线性演化纳入了一个综合研究中;在研究风动力中,一个非线性两点边值问题是数值求解。传质速度是埃克曼螺旋的湍流形式和斯托克斯漂移的总和。计算得出的表面质量传输速度大约等于观测文献中通常引用的风速的3%,约为10;通过解决广义特征值问题进行了线性不稳定性分析。结果表明,科里奥利效应导致最不稳定的朗缪尔环流模式是三维不稳定的。计算出的Langmuir涡旋在风向右侧对齐几度,并在横向风向右侧稍稍移动。该运动与观察结果一致。;通过使用伪谱方法集成非线性方程组,研究了Langmuir细胞的有限振幅发展。得到以下结果:在地下下行井的区域上形成了地面顺风射流,顺风流异常长达10 cm;上洋流系统受风,面波,科里奥利力和湍流效应的影响。我们的研究表明,所有这些影响都必须纳入理论模型中,以与原位测量取得令人满意的一致性。

著录项

  • 作者

    Xu, Zheng.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Geophysics.;Physical Oceanography.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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