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Inner-Shelf Response to Cross-Shelf Wind Stress: The Importance of the Cross-Shelf Density Gradient in an Idealized Numerical Model and Field Observations

机译:内架对跨架风应力的响应:理想数值模型和现场观测中跨架密度梯度的重要性

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摘要

This study investigates the effects of horizontal and vertical density gradients on the inner-shelf response to cross-shelf wind stress by using an idealized numerical model and observations from a moored array deployed south of Martha's Vineyard, Massachusetts. In two-dimensional (no along-shelf variation) numerical model runs of an initially stratified shelf, a cross-shelf wind stress drives vertical mixing that results in a nearly well-mixed inner shelf with a cross-shelf density gradient because of the sloping bottom. The cross-shelf density gradient causes an asymmetric response to on- and offshore wind stresses. For density increasing offshore, an offshore wind stress drives a near-surface offshore flow and near-bottom onshore flow that slightly enhances the vertical stratification and the cross-shelf circulation. An onshore wind stress drives the reverse cross-shelf circulation reducing the vertical stratification and the cross-shelf circulation. A horizontal Richardson number is shown to be the nondimensional parameter that controls the dependence of the wind-driven nondimensional cross-shelf transport on the cross-shelf density gradient. Field observations show the same empirical relationship between the horizontal Richardson number and transport fraction as the model predicts. These results show that it is the cross-shelf rather than vertical density gradient that is critical to predicting the inner-shelf cross-shelf transport driven by a cross-shelf wind stress.
机译:本研究通过使用理想化的数值模型和马萨诸塞州玛莎葡萄园岛以南的系泊阵列的观测资料,研究了水平和垂直密度梯度对内架对跨架风应力的影响。在最初分层的层架的二维(无沿架变化)数值模型运行中,跨层架风应力驱动垂直混合,由于倾斜,导致内部混合几乎完全混合,具有跨层架密度梯度底部。跨架密度梯度导致对陆上和海上风应力的不对称响应。对于海上密度的增加,海上风应力驱动近地表海上流动和近底陆上流动,从而略微增强了垂直分层和跨架循环。陆上风应力驱动反向的跨架循环,减少了垂直分层和跨架循环。水平的Richardson数显示为无量纲参数,该参数控制风力驱动的无量纲跨架运输对跨架密度梯度的依赖性。现场观察表明,水平理查森数与运移分数之间的经验关系与模型预测的相同。这些结果表明,跨架而非垂直密度梯度对于预测由跨架风应力驱动的内架跨架运输至关重要。

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  • 来源
    《Journal of Physical Oceanography》 |2014年第1期|86-103|共18页
  • 作者单位

    Woods Hole Oceanographic Institution, Woods Hole, Massachusetts,Department of Marine Sciences, University of Connecticut, Avery Point, 1080 Shennecossett Road, Groton, CT 06340;

    Woods Hole Oceanographic Institution, Woods Hole, Massachusetts;

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