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Parameterization of the light models in various general ocean circulation models for shallow waters.

机译:在各种浅海通用海洋环流模型中对光模型进行参数化。

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摘要

Solar energy is incident on the earth's surface in both short-wave and long-wave parts of the spectrum. The short-wave part of the spectrum is of special interest to oceanographers since the vertical distribution of temperature in the top layer of the ocean is mostly determined by the vertical attenuation of short-wave radiation. There are numerous studies regarding the temperature evolution as a function of time (see Chapter 2 for details). The diurnal and seasonal variation of the heat content (and hence temperature) of the ocean is explored in this thesis. The basis for such heat budget simulation lies in the fact that the heat budget is the primary driver of ocean currents (maybe secondary to wind effects) and these circulation features affect the biological and chemical effects of that region.; The vertical attenuation of light (classified to be in the 300--700 nm range) in the top layer of the ocean has been parameterized by several authors. Simpson and Dickey (1981) in their paper have listed the various attenuation schemes in use till then. This includes a single-exponential form, a bimodal exponential form, and a spectral decomposition into nine spectral bands, each with their specific exponential functions with depth.; The effects of vertical light attenuation have been investigated by integrating the light models into a 1D and a 3D turbulence closure model. The main part of the thesis is the inclusion of a bottom effect in the shallow waters. Bottom serves two purposes, it reflects some light based on its albedo and it radiates the rest of the light as heat. 1-D simulation including bottom effects clearly indicates the effect of light on the temperature profile and also the corresponding effect on salinity profiles.; An extension of the study includes a 3D simulation of the heat budget and the associated circulation and hydrodynamics. Intense heating due to the bottom leads to the formation of hyper-saline waters that percolate down to depths of 50 m in the summer. Such plumes have been simulated by using a 3D numerical ocean model and it is consistent with observations from the Bahamas banks.
机译:太阳能以光谱的短波和长波部分入射到地球表面。海洋学家特别关注光谱的短波部分,因为海洋顶层温度的垂直分布主要由短波辐射的垂直衰减决定。关于温度随时间变化的研究很多(有关详细信息,请参阅第2章)。本文研究了海洋热量(以及温度)的昼夜变化。这种热量预算模拟的基础是这样一个事实,即热量预算是洋流的主要驱动力(可能是风流的次要驱动力),而这些环流特征会影响该地区的生物和化学作用。几位作者已经对海洋顶层的光的垂直衰减(分类为300--700 nm范围)进行了参数化。 Simpson和Dickey(1981)在他们的论文中列出了迄今为止使用的各种衰减方案。这包括一个单指数形式,一个双峰指数形式,以及分解成九个光谱带的光谱,每个光谱带具有随深度的特定指数函数。通过将光模型集成到1D和3D湍流闭合模型中,已经研究了垂直光衰减的影响。论文的主要部分是在浅水区包括一个底部效应。底部有两个作用,它根据反射率反射一些光,并以热量的形式辐射其余的光。一维模拟(包括底部效应)清楚地表明了光对温度分布的影响以及对盐度分布的相应影响。研究的扩展包括热量预算以及相关的循环和流体动力学的3D模拟。由于底部的强烈加热导致形成高盐度水,在夏天渗透至50 m的深度。这些羽状流已经通过使用3D数值海洋模型进行了模拟,并且与巴哈马沿岸的观测结果一致。

著录项

  • 作者

    Warrior, Hari.;

  • 作者单位

    University of South Florida.;

  • 授予单位 University of South Florida.;
  • 学科 Physical Oceanography.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 154 p.
  • 总页数 154
  • 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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