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Nutrients, light and phytoplankton production in the shallow, tropical coastal waters of Bandon Bay, Southern Thailand

机译:泰国南部班登湾热带浅水域的营养,光和浮游植物生产

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Phytoplankton primary production and its regulation by light and nutrient availability were investigated in the shallow, tropical coastal waters of Bandon Bay, Southern Thailand. The bay was meso-eutrophicated and highly turbid, receiving river water discharge. Water column stratification was consistently weak during both rainy and dry seasons. Dissolved inorganic nitrogen (DIN) was higher off the river mouth than in the other regions, suggesting that river water discharge was a main source of DIN. By contrast, dissolved inorganic phosphorus (DIP) showed a significant negative correlation with total water depth, implying that regeneration around the sea floor was an important source of DIP. Surface DIN and DIP showed positive correlations with surface primary production (PP) and water column primary productivity (sigma PP*), respectively. The combined correlation and model analyses indicate that total water depth had an ambivalent influence on water column primary production (sigma PP); shallower water depth induced more active regeneration of nutrients, but it also caused higher turbidity and lower light availability as a result of enhanced resuspension of sediments. Furthermore, there was a vertical constraint for phytoplankton during the rainy season: total water depth tended to be shallower than euphotic zone depth. In conclusion, light limitation and vertical constraint owing to shallow water depth appear to be more important than nutrient limitation for water column primary production in Bandon Bay.
机译:在泰国南部班登湾热带浅水海域研究了浮游植物的初级生产及其受光和养分利用率的调节。海湾是中营养化的,高度混浊,接受河水排放。在雨季和旱季,水柱分层一直很弱。河口附近的溶解性无机氮(DIN)高于其他地区,表明河水排放是DIN的主要来源。相比之下,溶解的无机磷(DIP)与总水深呈显着负相关,表明海床附近的再生是DIP的重要来源。表面DIN和DIP分别与表面主要产量(PP)和水柱主要生产率(sigma PP *)呈正相关。相关性和模型分析相结合,表明总水深对水柱初级产量(sigma PP)产生矛盾的影响。较浅的水深会促使营养物质更活跃地再生,但由于沉积物的重悬性增强,还会导致更高的浊度和更低的光照利用率。此外,雨季期间浮游植物存在垂直约束:总水深往往比富营养区浅。总之,在班顿湾水柱初级生产中,由于水深浅而造成的光限制和垂直限制似乎比养分限制更为重要。

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