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Turbulent nutrient fluxes in the Iceland Basin

机译:冰岛盆地的湍流养分通量

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As part of a multidisciplinary cruise to the Iceland Basin in July-August 2007, near to the historical JGOFS Ocean Weather Station India site ( - 59° N, -19° W), observations were made of vertical turbulent nutrient fluxes around an eddy dipole, a strong mesoscale feature consisting of a cyclonic eddy and an anti-cyclonically rotating mode-water eddy. Investigation of the spatial distribution of vertical turbulent diffusivity around the dipole shows an almost uniform horizontal distribution despite the strong horizontal gradients in water velocity and density observed. An area mean turbulent diffusivity was calculated as 0.21 (95% confidence interval: 0.17-0.26) 10~(-4) m~2 s~(-1) at the base of the euphotic zone. The vertical turbulent fluxes of three major macro-nutrients into the euphotic zone were calculated as 0.13 (95% confidence interval 0.08-0.22) mmol m~(-2) day~(-1) for nitrate, 0.08 (0.05-0.12) mmol m~(-2) day~(-1) for silicate and, 8.6 (13.0-5.2 ) × 10~(-3) mmol m~(-2) day~(-1) for phosphate. The vertical turbulent flux of dissolved iron (dFe) into the euphotic zone was calculated to be 2.6 (95% confidence interval 1.3-4.3) × 10~(-6) mmol m~2 day~(-1). Turbulent macro-nutrient flux is estimated to contribute up to 14% of the deep winter mixing supply of silicate, nitrate and phosphate in the region. The magnitude of turbulent dFe flux is estimated to be at most 8% of the deep winter mixing supply of dFe. Deep winter mixing is hypothesised to supply an adequate amount of iron to fully utilise the deep winter mixed supply of silicate but not the deep winter mixed supply of nitrate. This suggests that while the iron supply may not limit the magnitude of the spring bloom, iron limitation may be occurring post bloom.
机译:作为2007年7月至8月对冰岛盆地的多学科巡游的一部分,靠近历史悠久的JGOFS印度海洋气象站(-59°N,-19°W),对涡流偶极子周围的垂直湍流养分通量进行了观测。 ,是由旋风涡和反旋旋转模式水涡组成的强大的中尺度特征。对偶极子周围垂直湍流扩散率的空间分布的研究表明,尽管观察到水速和密度有很强的水平梯度,但水平分布几乎是均匀的。在富营养区底部,平均湍流扩散率经计算为0.21(95%置信区间:0.17-0.26)10〜(-4)m〜2 s〜(-1)。计算得出三种主要常量营养素进入富营养区的垂直湍流通量为硝酸盐为0.13(95%置信区间0.08-0.22)mmol m〜(-2)天〜(-1),0.08(0.05-0.12)mmol m _(-2)天〜(-1)对于硅酸盐,8.6(13.0-5.2)×10〜(-3)mmol m〜(-2)天〜(-1)对于磷酸盐。溶铁(dFe)进入共沸区的垂直湍流通量计算为2.6(95%置信区间1.3-4.3)×10〜(-6)mmol m〜2天〜(-1)。据估计,湍流的大量养分通量贡献了该地区冬季深层混合硅酸盐,硝酸盐和磷酸盐的14%。 dFe湍流通量的大小估计最多是冬季深层dFe混合供应量的8%。假设冬季深层混合可以提供足够的铁,以充分利用冬季深层硅酸盐混合供应,而不充分利用冬季深层硝酸盐供应。这表明尽管铁的供应量可能不会限制春季开花的幅度,但铁的限制可能会在开花后发生。

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