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Behaviors of dissolved and particulate Co, Ni, Cu, Zn, Cd and Pb during a mesoscale Fe enrichment experiment (SEEDS II) in the western North Pacific

机译:北太平洋西部中尺度Fe富集实验(sEEDs II)中溶解态和颗粒态Co,Ni,Cu,Zn,Cd和pb的行为

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摘要

During mesoscale Fe enrichment (SEEDS II) in the western North Pacific ocean, we investigated dissolved and particulate Co, Ni, Cu, Zn, Cd and Pb in seawater from both field observation and shipboard bottle incubation of a natural phytoplankton assemblage with Fea ddition. Before the Fe enrichment, strong correlations between dissolved trace metals (Ni, Zn and Cd) and PO43-, and between particulate trace metals (Ni, Zn and Cd) and chlorophyll-a were obtained, suggesting that biogeochemical cycles mainly control the distributions of Ni, Zn and Cd in the study area. Average concentrations of dissolved Co, Ni, Cu, Zn, Cd and Pb in the surface mixed layer (0–20m) were 70 pM, 4.9, 2.1, 1.6, 0.48 nM and 52 pM, respectively, and those for the particulate species were 1.7 pM, 0.052, 0.094, 0.46, 0.037 nM and 5.2 pM, respectively. After Fe enrichment, chlorophyll-a increased 3 fold (up to 3 mg/L) during developing phases of the bloom (12 days). Mesozooplankton biomass also increased. Particulate Co, Ni, Cu and Cd inside the patch increase in the concentrations, but there were no analytically significant differences between concentrations inside and outside the patch. The bottle incubation with Fe addition (1 nM) showed an increase in chlorophyll-a (8.9 mg/L) and raised the particulate fraction up to 3–45% for all the metals, accompanying changes in Si/P, Zn/P and Cd/P. These results suggest that Fe addition lead to changes in biogeochemical cycling of trace metals. The comparison between the mesoscale Fe enrichment and the bottle incubation experiment suggests that although Fe was a limiting factor for the growth of phytoplankton, the enhanced biomass of mesozooplankton also limited the growth of phytoplankton and the transformation of trace metal speciation during the mesoscale Fe enrichment. Sediment trap data and the elemental ratios taken up by phytoplankton suggest that export loss was another reason that no detectable change in the concentrations of particulate trace metals was observed during the mesoscale Fe enrichment.
机译:在北太平洋西部中尺度铁富集(SEEDS II)期间,我们通过野外观察和天然浮游植物组合与Fea配比的船上培养,研究了海水中溶解的和颗粒状的Co,Ni,Cu,Zn,Cd和Pb。在铁富集之前,溶解的痕量金属(Ni,Zn和Cd)与PO43-之间,颗粒状的痕量金属(Ni,Zn和Cd)与叶绿素-a之间都具有很强的相关性,这表明生物地球化学循环主要控制着土壤的分布。研究区域的镍,锌和镉。在表面混合层(0-20m)中溶解的Co,Ni,Cu,Zn,Cd和Pb的平均浓度分别为70 pM,4.9、2.1、1.6、0.48 nM和52 pM,而颗粒物的平均浓度为分别为1.7 pM,0.052、0.094、0.46、0.037 nM和5.2 pM。铁富集后,在开花的发育阶段(12天),叶绿素-a增加了3倍(最高3 mg / L)。中型浮游生物的生物量也增加了。贴剂内部的微粒Co,Ni,Cu和Cd浓度增加,但贴剂内部和外部的浓度之间没有分析上的显着差异。添加Fe(1 nM)的瓶子温育显示,所有金属的叶绿素a(8.9 mg / L)增加,颗粒分数提高到3-45%,同时Si / P,Zn / P和镉/磷这些结果表明,添加铁会导致痕量金属的生物地球化学循环发生变化。中尺度铁富集和瓶培养实验的比较表明,尽管铁是浮游植物生长的限制因素,中游浮游生物的增强生物量也限制了中尺度铁富集期间浮游植物的生长和微量金属形态的转化。沉积物陷阱数据和浮游植物吸收的元素比表明,出口损失是中尺度铁富集期间未观察到颗粒中痕量金属浓度变化的另一个原因。

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