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首页> 外文期刊>Continental Shelf Research: A Companion Journal to Deep-Sea Research and Progress in Oceanography >Modeling turbulent dispersion on the North Flank of Georges Bank using Lagrangian Particle Methods
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Modeling turbulent dispersion on the North Flank of Georges Bank using Lagrangian Particle Methods

机译:拉格朗日粒子法模拟乔治河北岸湍流扩散

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Circulation and transport at the North Flank of Georges Bank are studied using a data-assimilative 3-D model of frontal dynamics under stratified, tidally energetic conditions over steep topography. The circulation model was used in real-time during a cross-frontal transport study. Skill is evaluated retrospectively, relative to CTD, ADCP, drifter, and fluorescent dye observations. Hydrographic skill is shown to be retained for periods of weeks, requiring only initialization from routine surveys and proper atmospheric heating subsequently. Transport skill was limited by the wind stress input; real-time forecast winds taken from an operational meteorological model produced cross-isobath Ekman transport which was not observed locally. Retrospective use of observed local wind stress removed this cross-frontal bias.The contribution of tidal-time motion to the dispersion of a passive tracer is assessed using an ensemble of passive particles. The particle release simulates an at-sea dye injection in the pycnocline, which is followed for four days. Non-advective vertical tracer transport is represented as a random walk process sensitive to the local eddy diffusivity and its gradient, as computed from the turbulence closure. Non-advective horizontal tracer transport is zero for these ensembles. Computations of ensemble variance growth support estimates of (Lagrangian) horizontal dispersion.Off-bank, ensembles are essentially non-diffusive. As an ensemble engages the mixing front, its vertical diffusivity rises by 3 orders of magnitude, and horizontal spreading occurs in the complex front. The resultant horizontal dispersion is estimated from the ensemble variance growth, in along-bank and cross-bank directions. It is partitioned, roughly, between that contributed by 3-D advection alone, and that initiated by vertical diffusion.Engagement in the mixing front occurred in the forecast ensemble as a result of Ekman drift produced by an erroneous wind prediction. In the hindcast, observed wind left the ensemble non-diffusive and compact, advecting parallel to the mixing front and experiencing some advective shear dispersion.Lagrangian dispersion is event-specific and both simulations here represent credible events with dramatically different ecological outcomes. The skill metrics used are less sensitive, indicating that metrics tailored to surface-layer phenomena would be more appropriate in a data-assimilative context. The hindcast is closer to truth, based on first principles (better information). The level 2.5 closure used is realistic in the ocean interior; the near-surface processes need further refinement, especially as both surface- and bottom-generated turbulence affect these events strongly. (c) 2005 Elsevier Ltd. All rights reserved.
机译:在陡峭的地形上,在分层,潮汐高能条件下,使用数据动态化的正面动力学3D模型研究了乔治银行北翼的环流和运输。在跨额运输研究中实时使用了循环模型。相对于CTD,ADCP,浮子和荧光染料的观察,对技能进行回顾性评估。水文技能显示可以保留数周,仅需要从常规调查中进行初始化并随后进行适当的大气加热。运输技能受到风应力输入的限制;从运行气象模型获得的实时预测风产生了跨等值线埃克曼输运,这在当地没有观察到。回顾性地使用观测到的局部风应力消除了这种横向误差。潮汐运动对无源示踪剂扩散的贡献是通过无源粒子的集合来评估的。颗粒释放模拟了在碧萝oc中的海上染料注入,随后持续四天。非平流垂直示踪剂传输表示为对局部涡流扩散率及其梯度敏感的随机游走过程,该过程由湍流闭合计算得出。对于这些集合,非对流水平示踪剂传输为零。整体方差增长的计算支持(拉格朗日)水平离差的估计。离岸,合奏本质上是非扩散的。当一个合奏与混音前沿接合时,其垂直扩散率将增加3个数量级,并且在复杂的前沿会发生水平扩展。根据沿岸和跨岸方向的总体方差增长估算所得的水平离散度。大致在3D对流作用和垂直扩散作用之间进行了划分。由于错误的风预报产生的Ekman漂移,在预报集合中发生了混合锋面的参与。在后播中,观测到的风离开了整体,没有扩散且紧凑,平行于混合锋向平流并经历了一些对流剪切分散。拉格朗日分散是特定于事件的,并且这两个模拟都代表了可信的事件,其生态结果截然不同。所使用的技能指标不太敏感,这表明针对数据表层现象量身定制的指标在数据同化的环境中更为合适。基于第一原则(更好的信息),后造者更接近真理。使用的2.5级封闭在海洋内部是现实的。近地表过程需要进一步完善,特别是因为地表和底部产生的湍流都强烈影响这些事件。 (c)2005 Elsevier Ltd.保留所有权利。

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