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Tidal currents, energy flux and bottom boundary layer thickness in the Clyde Sea and North Channel of the Irish Sea

机译:克莱德海和爱尔兰海北海道的潮流,能量通量和底部边界层厚度

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摘要

A high-resolution three-dimensional model of the Clyde Sea and the adjacent North Channel of the Irish Sea is used to compute the major diurnal and semidiurnal tides in the region, the associated energy fluxes and thickness of the bottom boundary layer. Initially, the accuracy of the model is assessed by performing a detailed comparison of computed tidal elevations and currents in the region, against an extensive database that exists for the M_2, S_2, N_2, K_1 and O_1 tides. Subsequently, the model is used to compute the tidal energy flux vectors in the region. These show that the major energy flux is confined to the North Channel region, with little energy flux into the Clyde Sea. Comparison with the observed energy flux in the North Channel shows that its across-channel distribution and its magnitude are particularly sensitive to the phase difference between elevation and current. Consequently, small changes in the computed values of these parameters due to slight changes of the order of the uncertainty in the open-boundary values to the model, can significantly influence the computed energy flux. The thickness of the bottom boundary layer in the region is computed using a number of formulations. Depending upon the definition adopted, the empirical coefficient C used to determine its thickness varies over the range 0.1 to 0.3, in good agreement with values found in the literature. In the North Channel, the boundary layer thickness occupies the whole water depth, and hence tidal turbulence produced at the sea bed keeps the region well mixed. In the Clyde Sea, the boundary layer thickness is a small fraction of the depth, and hence the region stratifies.
机译:克莱德海和邻近的爱尔兰海北海道的高分辨率三维模型用于计算该地区的主要日,半日潮汐,相关的能量通量和底部边界层的厚度。最初,该模型的准确性是通过针对该地区存在的M_2,S_2,N_2,K_1和O_1潮汐数据库进行详细比较,以对该地区的潮汐高程和潮流进行比较来评估的。随后,该模型用于计算该区域的潮汐能通量向量。这些表明,主要的能量通量被限制在北海峡区域,几乎没有能量通入克莱德海。与北通道观测到的能量通量的比较表明,其北通道的分布及其幅度对高程和电流之间的相位差特别敏感。因此,由于模型的开放边界值的不确定性的阶次的微小变化,这些参数的计算值的微小变化会显着影响计算出的能量通量。使用多种公式计算该区域中底部边界层的厚度。根据采用的定义,用于确定其厚度的经验系数C在0.1到0.3的范围内变化,与文献中的值非常吻合。在北海道,边界层厚度占据了整个水深,因此在海床产生的潮汐湍流使该区域保持了良好的混合状态。在克莱德海,边界层厚度只是深度的一小部分,因此该区域分层。

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  • 来源
    《Ocean Dynamics 》 |2004年第2期| p. 108-125| 共18页
  • 作者单位

    Proudman Oceanographic Laboratory, Bidston Observatory, Birkenhead, Merseyside, CH43 7RA, UK;

    Proudman Oceanographic Laboratory, Bidston Observatory, Birkenhead, Merseyside, CH43 7RA, UK;

    Proudman Oceanographic Laboratory, Bidston Observatory, Birkenhead, Merseyside, CH43 7RA, UK;

    Proudman Oceanographic Laboratory, Bidston Observatory, Birkenhead, Merseyside, CH43 7RA, UK;

    Proudman Oceanographic Laboratory, Bidston Observatory, Birkenhead, Merseyside, CH43 7RA, UK;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学 ;
  • 关键词

    Tidal currents; Irish Sea; energy flux; bottom boundary layer; 3-D model;

    机译:潮流爱尔兰海能量通量底部边界层3-D模型;

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