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Marine particle dynamics : sinking velocities, size distributions, fluxes, and microbial degradation rates

机译:海洋粒子动力学:下沉速度,大小分布,通量和微生物降解率

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摘要

The sinking flux of particulate matter into the ocean interior is an oceanographic phenomenon that fuels much of the metabolic demand of the subsurface ocean and affects the distribution of carbon and other elements throughout the biosphere. In this thesis, I use a new suite of observations to study the dynamics of marine particulate matter at the contrasting sites of the subtropical Sargasso Sea near Bermuda and the waters above the continental shelf of the Western Antarctic Peninsula (WAP). An underwater digital camera system was employed to capture images of particles in the water column. The subsequent analysis of these images allowed for the determination of the particle concentration size distribution at high spatial, depth, and temporal resolutions. Drifting sediment traps were also deployed to assess both the bulk particle flux and determine the size distribution of the particle flux via image analysis of particles collected in polyacrylamide gel traps. The size distribution of the particle concentration and flux were then compared to calculate the average sinking velocity as a function of particle size. I found that the average sinking velocities of particles ranged from about 10-200 m d- and exhibited large variability with respect to location, depth, and date. Particles in the Sargasso Sea, which consisted primarily of small heterogeneous marine snow aggregates, sank more slowly than the rapidly sinking krill fecal pellets and diatom aggregates of the WAP. Moreover, the average sinking velocity did not follow a pattern of increasing velocities for the larger particles, a result contrary to what would be predicted from a simple formulation of Stokes' Law. At each location, I derived a best-fit fractal correlation between the flux size distribution and the total carbon flux. The use of this relationship and the computed average sinking velocities enabled the estimation of particle flux from measurements of the particle concentration size distribution. This approach offers greatly improved spatial and temporal resolution when compared to traditional sediment trap methods for measuring the downward flux of particulate matter. Finally, I deployed specialized in situ incubation chambers to assess the respiration rates of microbes attached to sinking particles. I found that at Bermuda, the carbon specific remineralization rate of sinking particulate matter ranged from 0.2 to 1.1 d', while along the WAP, these rates were very slow and below the detection limit of the instruments. The high microbial respiration rates and slow sinking velocities in the Sargasso Sea resulted in the strong attenuation of the flux with respect to depth, whereas the rapid sinking velocities and slow microbial degradation rates of the WAP resulted in nearly constant fluxes with respect to depth.
机译:颗粒物向海洋内部的下沉是一种海洋学现象,加剧了地下海洋的新陈代谢需求,并影响了整个生物圈中碳和其他元素的分布。在本文中,我将使用一套新的观测结果来研究百慕大附近的亚热带藻类海和南极西部大陆架(WAP)大陆架上方水域的对比点处的海洋颗粒物动力学。水下数码相机系统用于捕获水柱中的颗粒图像。这些图像的后续分析允许确定高空间,深度和时间分辨率下的颗粒浓度大小分布。漂流沉积物捕集阱也被部署来评估整体颗粒通量并通过对聚丙烯酰胺凝胶阱中收集的颗粒进行图像分析来确定颗粒通量的大小分布。然后比较颗粒浓度和通量的尺寸分布,以计算平均沉降速度与颗粒尺寸的关系。我发现,颗粒的平均下沉速度约为10-200 m d-,并且在位置,深度和日期方面表现出较大的变化性。藻类海中的颗粒主要由小的非均质海洋积雪组成,下沉的速度比WAP迅速下沉的磷虾粪便颗粒和硅藻聚集体要慢。而且,对于更大的粒子,平均下沉速度没有遵循速度增加的规律,这与斯托克斯定律的简单公式所预测的结果相反。在每个位置,我都得出了通量大小分布与总碳通量之间的最佳拟合分形相关性。利用这种关系和计算的平均下沉速度,可以通过测量颗粒浓度大小分布来估算颗粒通量。与用于测量颗粒物质向下通量的传统沉积物捕集方法相比,该方法可大大提高空间和时间分辨率。最后,我部署了专门的原位培养箱来评估附着在沉没颗粒上的微生物的呼吸速率。我发现在百慕大,下沉的颗粒物的碳比再矿化率范围为0.2到1.1 d',而在WAP上,这些速率非常缓慢并且低于仪器的检测极限。 Sargasso海中高的微生物呼吸速率和缓慢的下沉速度导致通量相对于深度的强烈衰减,而WAP的快速下沉速度和缓慢的微生物降解率导致通量相对于深度几乎恒定。

著录项

  • 作者

    McDonnell, Andrew M. P;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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