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Dispersal of the Hudson River Plume in the New York Bight Synthesis of Observational and Numerical Studies During LaTTE

机译:哈德逊河羽流在纽约LaTTE期间的观测和数值综合分析中的弥散

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摘要

Observations and modeling during the Lagrangian Transport and Transformation Experiment (LaTTE) characterized the variability of the Hudson River discharge and identified several freshwater transport pathways that lead to cross-shelf mixing of the Hudson plume. The plumes variability is comprised of several different outflow configurations that are related to wind forcing, river discharge, and shelf circulation. The modes are characterized by coastal current formation and unsteady bulge recirculation. Coastal currents are favored during low-discharge conditions and downwelling winds, and represent a rapid downshelf transport pathway. Bulge formation is favored during high-discharge conditions and upwelling winds. The bulge is characterized by clockwise rotating fluid and results in freshwater transport that is to the left of the outflow and opposed to classical coastal current theory. Upwelling winds augment this eastward flow and rapidly drive the freshwater along the Long Island coast. Upwelling winds also favor a midshelf transport pathway that advects fluid from the bulge region rapidly across the shelf on the inshore side of the Hudson Shelf Valley. A clockwise bulgelike recirculation also occurs along the New Jersey coast, to the south of the river mouth, and is characterized by an offshore veering of the coastal current. Modeling results indicate that the coastal transport pathways dominate during the winter months while the midshelf transport pathway dominates during summer months. Finally, because the time scales of biogeochemical transformations in the plume range from hours to weeks or longer, the details of both the near- and far-field plume dynamics play a central role in the fate of material transported from terrestrial to marine ecosystems.
机译:拉格朗日运输和转换实验(LaTTE)期间的观测和建模描述了哈德逊河流量的变化性,并确定了导致哈德逊羽流跨架混合的几种淡水运输路径。羽状流的可变性由几种不同的流出构造组成,这些流出构造与风力,河水排放和架子循环有关。这些模式的特征是沿岸流形成和不稳定的隆起再循环。在低流量条件和下风向时,沿海水流受到青睐,代表着快速的下架运输途径。在高流量条件和上升气流时,隆起形成是有利的。凸起的特征​​是顺时针旋转的流体,导致淡水运输位于流出的左侧,与经典的海岸流理论相反。上升的风增加了这种向东的流动,并迅速将淡水带到长岛海岸。上升的风也有利于中架输送路径,该路径将来自凸起区域的流体快速平流到哈德逊架山谷的近岸架上。沿着新泽西州海岸,在河口以南,也发生顺时针隆起状的回流,其特征是沿海水流的近海转向。模拟结果表明,沿海运输途径在冬季占主导地位,而中架运输途径在夏季占主导地位。最后,由于羽流中生物地球化学转变的时标范围从数小时到数周甚至更长,因此近场和远场羽流动力学的细节在从陆地到海洋生态系统的物质命运中起着至关重要的作用。

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  • 来源
    《Oceanography》 |2008年第4期|148-161|共14页
  • 作者单位

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Department of Oceanography, College of Ocean Science and Technology, Kunsan National University, Korea;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, NJ, USA;

    Department of Fisheries and Aquatic Sciences, University of Florida, Gainesville, FL, USA;

    Biological Science Department, California Polytechnic State University, San Luis Obispo, CA, USA;

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