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Phyto-VFP: a new bio-optical model of pelagic primary production based on variable fluorescence measures

机译:PHYTO-VFP:基于可变荧光措施的基础初级生产的新生物光学模型

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Marine primary production (PP) is a key factor in the regulation of the global carbon cycle, with important potential feedback on climate. Seventy percent of marine PP is generated by phytoplankton photosynthesis. However, the phytoplankton productivity rate is dependent on the photo-physiological state of phytoplankton cells, as well as other environmental conditions. To consider these variables appropriately, refine the current estimates of PP, and reduce the laboursome and lengthy methodologies of radiocarbon estimates, we have created "Phyto-VFP" (Variable Fluorescence Phytoplankton Production), a new bio-optical model classified as a Wavelength and Depth-resolved (WDR) model. The model integrates the effect of the photo-acclimation processes on the "active" fraction of the phytoplankton population with the dynamic of the water column, parametrised through a series of laboratory experiments based on in vivo variable fluorescence measures on the marine diatom Skeletonema costation (Greville) Cleve. The performance of Phyto-VFP was compared with concurrent estimates of radiocarbon (C-14) uptakes, under different dynamic and optical conditions, during two oceanographic cruises (SAMCA3 and SAMCA4) in the Mediterranean Sea. The low Root Mean Square Differences (RMSDs) show that Phyto-VFP performs well when estimating phytoplankton PP. When compared to other biooptical models, Phyto-VFP estimates of PP in coastal waters were closer to radiocarbon measurements than other models could predict [e.g., the Morel model (MM)]. The application of Phyto-VFP to the SAMCA dataset and its comparison to MM allowed the assessment of model performance under three different physical and biological conditions, in which it was possible to analyse how photo-physiological responses of phytoplankton influence PP.
机译:海洋初级生产(PP)是全球碳循环调节的关键因素,具有关于气候的重要潜在反馈。百分之七十分的海洋PP由Phytoplankton光合作用产生。然而,浮游植物的生产率率取决于浮游植物细胞的光学生理状态,以及其他环境条件。要适当地考虑这些变量,请优化PP的当前估计,并降低玻璃葡萄核估计的耐朗和冗长的方法,我们创建了“PHYTO-VFP”(可变荧光浮游植物生产),该新的生物光学模型被归类为波长和深度解析(WDR)模型。该模型与水柱动态的动力学,通过基于体内可变荧光措施的水柱的动态,参数化了光处理过程对浮游植物群体的“活性”分数的影响。基于体内可变荧光措施,探讨了海洋硅藻骨膜骨架耗时量的一系列实验室实验( Greville)Cleve。将PHYTO-VFP的性能与在地中海的两个海洋巡航(Samca3和Samca4)的不同动态和光学条件下的radiocarbon(C-14)上升的并发估计。低根均方差异(RMSDS)表明在估计浮游植物PP时PHYTO-VFP表现良好。与其他生物学模型相比,沿海水域中PP的PHY-VFP估计比其他模型更接近无线电金测量,而不是其他模型可以预测[例如羊毛模型(mm)]。 PHYTO-VFP将PHYTO-VFP应用于SAMCA数据集及其与MM的比较允许评估三种不同的物理和生物条件下的模型性能,其中可以分析浮游植物影响PP的光学生理反应。

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