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Phytoplankton Response to Intrusions of Slope Water on the West Florida Shelf: Models and Observations

机译:浮游植物对西佛罗里达州陆架上斜坡水入侵的响应:模型和观测

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摘要

Previous hypotheses had suggested that upwelled intrusions of nutrient-rich Gulf of Mexico slope water onto the West Florida Shelf (WFS) led to formation of red tides of Karenia brevis. However, coupled biophysical models of (1) wind- and buoyancy-driven circulation, (2) three phytoplankton groups ( diatoms, K. brevis, and microflagellates), (3) these slope water supplies of nitrate and silicate, and (4) selective grazing stress by copepods and protozoans found that diatoms won in one 1998 case of no light limitation by colored dissolved organic matter (CDOM). The diatoms lost to K. brevis during another CDOM case of the models. In the real world, field data confirmed that diatoms were indeed the dominant phytoplankton after massive upwelling in 1998, when only a small red tide of K. brevis was observed. Over a 7-month period of the CDOM-free scenario the simulated total primary production of the phytoplankton community was similar to1.8 g C m(-2) d(-1) along the 40-m isobath of the northern WFS, with the largest accumulation of biomass on the Florida Middle Ground (FMG). Despite such photosynthesis, these models of the WFS yielded a net source of CO2 to the atmosphere during spring and summer and suggested a small sink in the fall. With diatom losses of 90% of their daily carbon fixation to herbivores the simulation supported earlier impressions of a short, diatom-based food web on the FMG, where organic carbon content of the surficial sediments is tenfold those of the surrounding seabeds. Farther south, the simulated near-bottom pools of ammonium were highest in summer, when silicon regeneration was minimal, leading to temporary Si limitation of the diatoms. Termination of these upwelled pulses of production by diatoms and nonsiliceous microflagellates mainly resulted from nitrate exhaustion in the model, however, mimicking most del(15)PON observations in the field. Yet, the CDOM-free case of the models failed to replicate the observed small red tide in December 1998, tagged with the del(15)N signature of nitrogen fixation. A large red tide of K. brevis did form in the CDOM-rich case, when estuarine supplies of CDOM favored the growth of the shade-adapted, ungrazed dinoflagellates. The usual formation of large harmful algal blooms of u3e1 ug chl L-1 (10(5) cells L-1) in the southern part of the WFS, between Tampa Bay and Charlotte Harbor, must instead depend upon local aeolian and estuarine supplies of nutrients and CDOM sun screen, not those from the shelf break. In the absence of slope water supplies, local upwelling instead focuses nitrate-poor innocula of co-occurring K. brevis and nitrogen fixers at coastal fronts for both aggregation and transfer of nutrients between these phytoplankton groups.
机译:先前的假设表明,营养丰富的墨西哥湾斜坡水向上涌入西佛罗里达大陆架(WFS)导致形成了卡列尼亚短红潮。但是,耦合的生物物理模型包括:(1)风和浮力驱动的循环;(2)浮游植物三大类(硅藻,短毛K.和微鞭毛虫);(3)这些硝酸盐和硅酸盐的斜向供水;以及(4) co足类和原生动物的选择性放牧胁迫发现,硅藻在1998年的一例案例中获胜,该案例没有受有色溶解有机物(CDOM)限制光照。在另一个CDOM模型案例中,硅藻输给了K. brevis。在现实世界中,实地数据证实,在1998年发生大规模上涌之后,硅藻确实是浮游植物的主要优势,当时只观察到了短的K. brevis赤潮。在没有CDOM的情况下的7个月期间,沿WFS北部40米等深线处,浮游植物群落的模拟总初级产量类似于1.8 g C m(-2)d(-1),佛罗里达中地(FMG)上最大的生物量积累。尽管有这样的光合作用,但这些WFS模型在春季和夏季产生了向大气中排放二氧化碳的净源,并在秋季暗示了一个小的下沉。由于硅藻每天损失90%的食草动物固碳,该模拟为FMG上基于硅藻的短食物网提供了较早的印象,其中表层沉积物中的有机碳含量是周围海床的十倍。再往南,夏季模拟的接近底部的铵池最高,这时硅的再生极少,从而导致硅藻的暂时性Si限制。硅藻和非硅质微鞭毛虫终止了这些上升的生产脉冲,这主要是由于模型中的硝酸盐消耗导致的,但是,该模拟了该领域中的大多数del(15)PON观测结果。然而,该模型的无CDOM案例未能复制观察到的1998年12月的小红潮,其上标记有固氮的del(15)N签名。在CDOM丰富的案例中确实形成了一个短的K. brevis潮汐,当时CDOM的河口供给促进了阴影适应,未磨砂的鞭毛鞭毛虫的生长。在坦帕湾和夏洛特港之间的WFS南部,通常形成大量有害藻类 u3e1 ug chl L-1(10(5)细胞L-1),必须依靠当地的风沙和河口补给营养物质和CDOM防晒霜,而不是那些从货架上摔下来的。在没有斜坡供水的情况下,局部上升流将集中出现在沿海锋线的同时存在的K. brevis和固氮菌的硝酸盐含量低的接种物上,以在这些浮游植物群之间聚集和转移营养。

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