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首页> 外文期刊>Continental Shelf Research: A Companion Journal to Deep-Sea Research and Progress in Oceanography >A test of the influence of tidal stream polarity on the structure of turbulent dissipation
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A test of the influence of tidal stream polarity on the structure of turbulent dissipation

机译:潮汐水流极性对湍流消散结构影响的测试

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Vertical mixing by the tides plays a key role in controlling water column structure over the seasonal cycle in shelf seas. The influence of tidal stirring is generally well represented as a competition between surface buoyancy input and the production of turbulent kinetic energy (TKE) by frictional stresses, a competition which is encapsulated in the Qh/u(3) criterion. An alternative control mechanism arises from the limitation of the thickness of the bottom boundary layer due to the effects of rotation and the oscillation of the flow. Model studies indicate that, for conditions typical of the European shelf seas, the energy constraint exerts the dominant control but that for tidal streams with large positive polarisation (i.e. anti-clockwise rotation of velocity vector), some influence of rotation in limiting mixing should be detectable. We report here measurements of flow structure (with ADCPs) and turbulent dissipation (FLY Profiler) made at two similar locations in the Celtic Sea which differ principally in that the tidal currents rotate in opposite senses with approximately equal magnitude (polarity P = +/- 0. 6). A clear contrast was observed between the two sites in the vertical structure of the currents, the density profile and the rate of dissipation of TKE. At the positive polarity (PP) site (P approximate to +0.6), the bottom boundary layer in the tidal flow was limited to similar to 20 mab (metre above the bed) and significant dissipation from bottom boundary friction was constrained within this layer. At the negative polarity (NP) site (P approximate to -0.6), the dominant clockwise rotary current component exhibited a velocity defect (i.e. reduction relative to the free stream) extending into the upper half of the water column while significant dissipation was observed to penetrate much further up the water column with dissipation levels similar to 10(-4-5) W m(-3) reaching to the base of the pycnocline at 70-80 mab. These contrasting features of the vertical distribution of dissipation are well reproduced by a 1-D model when run with windstress and tidal forcing and using the observed density profile. Model runs with reversed polarity at the two sites, support the conclusion that the observed contrast in the structure of tidal velocity, dissipation and stratification is due to the influence of tidal stream polarity. Increased positive polarity reduces the upward penetration of mixing which allows the development of stronger seasonal stratification, which, in turn, further inhibits vertical mixing. (c) 2007 Elsevier Ltd. All rights reserved.
机译:潮汐的垂直混合在架子海的季节性周期中控制水柱结构起着关键作用。潮汐搅拌的影响通常很好地表示为表面浮力输入与通过摩擦应力产生的湍流动能(TKE)之间的竞争,该竞争封装在Qh / u(3)准则中。由于旋转和流动的振荡对底部边界层厚度的限制,产生了一种替代的控制机制。模型研究表明,对于欧洲大陆架海的典型条件,能量约束起主导作用,但对于正极化较大的潮汐流(即速度矢量的逆时针旋转),应在限制混合的过程中对旋转产生一些影响。可检测的。我们在此报告在凯尔特海中两个相似位置进行的流动结构(带有ADCP)和湍流耗散(FLY Profiler)的测量值,其主要区别在于潮汐流以相反的方向旋转,幅度近似相等(极性P = +/- 0. 6)。在电流的垂直结构,密度分布和TKE的耗散率之间,在两个位置之间观察到明显的对比。在正极性(PP)位置(P大约为+0.6),潮汐流的底部边界层被限制为类似于20 mab(床上方米),并且底部边界摩擦的显着耗散被限制在该层内。在负极性(NP)位置(P约为-0.6),主要的顺时针旋转电流分量显示出速度缺陷(即相对于自由流的减小),延伸到水柱的上半部分,同时观察到显着的耗散。深入水柱,耗散水平类似于10(-4-5)W m(-3),达到70-80 mab的比浓可可碱。一维模型在风压和潮汐强迫作用下并使用观测到的密度分布图可以很好地再现这些垂直分布的消散特征。模型在两个位置以相反极性运行,支持以下结论:潮汐速度,耗散和分层结构中观察到的对比是由于潮汐流极性的影响。增大的正极性会降低混合的向上渗透,从而形成更强的季节性分层,进而进一步抑制垂直混合。 (c)2007 Elsevier Ltd.保留所有权利。

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