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Effect of small scale transport processes on phytoplankton distribution in coastal seas

机译:小规模运输过程对沿海海域浮游植物分布的影响

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Coastal ocean ecosystems are major contributors to the global biogeochemical cycles and biological productivity. Physical factors induced by the turbulent flow play a crucial role in regulating marine ecosystems. However, while large-scale open-ocean dynamics is well described by geostrophy, the role of multiscale transport processes in coastal regions is still poorly understood due to the lack of continuous high-resolution observations. Here, the influence of small-scale dynamics (O(3.5–25) km, i.e. spanning upper submesoscale and mesoscale processes) on surface phytoplankton derived from satellite chlorophyll-a (Chl-a) is studied using Lagrangian metrics computed from High-Frequency Radar currents. The combination of complementary Lagrangian diagnostics, including the Lagrangian divergence along fluid trajectories, provides an improved description of the 3D flow geometry which facilitates the interpretation of two non-exclusive physical mechanisms affecting phytoplankton dynamics and patchiness. Attracting small-scale fronts, unveiled by backwards Lagrangian Coherent Structures, are associated to negative divergence where particles and Chl-a standing stocks cluster. Filaments of positive divergence, representing large accumulated upward vertical velocities and suggesting accrued injection of subsurface nutrients, match areas with large Chl-a concentrations. Our findings demonstrate that an accurate characterization of small-scale transport processes is necessary to comprehend bio-physical interactions in coastal seas.
机译:沿海海洋生态系统是全球生物地球化学循环和生物生产力的主要贡献者。湍流引起的物理因素在调节海洋生态系统中起着至关重要的作用。然而,尽管地球动力学很好地描述了大规模的开放海洋动力学,但由于缺乏连续的高分辨率观测,对沿海地区多尺度运输过程的作用仍然知之甚少。在这里,使用高频计算的拉格朗日度量,研究了小尺度动力学(O(3.5–25)km,即跨越上亚中尺度和中尺度过程)对卫星叶绿素-a(Chl-a)衍生的表面浮游植物的影响。雷达电流。互补的拉格朗日诊断程序(包括沿流体轨迹的拉格朗日散度)的组合提供了对3D流动几何的改进描述,有助于解释影响浮游植物动力学和斑驳的两种非排他性物理机制。向后拉格朗日相干结构揭示的吸引小规模前沿与负散度相关,在负散度下颗粒和Chl-a常规库存聚集。正发散的细丝代表较大的向上累积垂直速度,并表示应累积注入地下养分,与Chl-a浓度高的区域匹配。我们的发现表明,小规模运输过程的准确表征对于理解沿海海洋中的生物物理相互作用是必要的。

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