首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Primary production associated with the Florida Current along the East Florida Shelf: Weekly to seasonal variability from mesoscale-resolution biophysical simulations
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Primary production associated with the Florida Current along the East Florida Shelf: Weekly to seasonal variability from mesoscale-resolution biophysical simulations

机译:与东佛罗里达大陆架上的佛罗里达洋流相关的主要生产:中尺度分辨率生物物理模拟的每周至季节性变化

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Numerical simulations with a mesoscale-resolution, three-dimensional coastal ocean model, coupled to a four-component ecosystem model, provide estimates of the frequency, intensity, duration, and property transport of upwelling events along the East Florida Shelf (EFS), and help identify their underlying mechanisms. The results compare favorably with in situ observations and demonstrate the strong variability in the ecosystem response associated with shelfbreak upwelling on daily to seasonal timescales. Monthly-to-seasonal nitrate inputs are mainly due to bottom Ekman transport, as the Florida Current (FC) jet interacts with the EFS topography, and summer coastal upwelling-favorable winds. The mesoscale variability in nitrate inputs along the EFS shelfbreak is directly related to Florida Current Frontal Eddies (FCFE), but their contribution to primary production is strongly modulated by the monthly-to-seasonal fluctuations in biological activity. Owing to short-lived biological activity and only approximately weekly recurrence periods, cumulative mesoscale contributions to primary production over the year are approximately 50% smaller than cumulative monthly-to-seasonal contributions. Since mesoscale contributions to net cross-stream transport are offshore and of equal or larger magnitude than monthly-to-seasonal contributions, FCFE activity should contribute significantly to the export of nitrate and phytoplankton from the continental shelf, especially north of 29°N as the FCFEs intensify while translating poleward along the EFS. In conclusion, the coupled physical-biological simulations provide a new framework to investigate the ecosystem response to the FC circulation over the EFS and represent a necessary step toward the implementation of more elaborate ecosystem models for future ecological forecasting efforts in the region.
机译:具有中尺度分辨率的三维沿海海洋模型以及四部分生态系统模型的数值模拟提供了对沿东佛罗里达大陆架(EFS)的上升流的频率,强度,持续时间和属性传输的估计,以及帮助确定其潜在机制。结果与原位观测结果相比具有优势,并证明了在每天到季节性的时间尺度上,与架子破裂上升有关的生态系统响应的强烈变化。每月至每个季节的硝酸盐输入量主要是由于底部埃克曼输运所致,因为佛罗里达洋流(FC)喷流与EFS地形相互作用,以及夏季沿海上升气流有利。沿EFS搁板破坏的硝酸盐输入的中尺度变化与佛罗里达当前锋旋涡(FCFE)直接相关,但其对初级生产的贡献受到生物活动的逐月波动强烈调节。由于生物活动寿命短和仅大约每周一次的复发期,一年中对初级生产的累积中尺度贡献比月对季节的累积贡献小约50%。由于中尺度对净跨流运输的贡献是近海的,并且比月度到季节的贡献相等或更大,因此,FCFE活动应为大陆架(尤其是北纬29°以北)的硝酸盐和浮游植物的出口做出重要贡献。 FCFE在沿EFS向极平移时会增强。总之,耦合的生物生物学模拟为研究生态系统对EFS上FC循环的响应提供了一个新的框架,并且代表了朝着对该地区未来的生态预测工作实施更加精细的生态系统模型迈出的必要步骤。

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