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Influence of Mesoscale Eddies on the Deep Ocean Dynamics over the East Pacific Rise near 10N

机译:中尺度涡旋对10N附近东太平洋上升深海动力学的影响

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摘要

Mesoscale eddies are ubiquitous in the World Ocean and dominate the energy content on subinertial time scales. However, due to a lack of in situ data from the deep ocean, most previous work has focused on signals near the sea-surface, that is, the signals of mesoscale eddies in the deep ocean and their influence on the deep ocean dynamics have not yet been intensively studied. In this thesis, the connections between mesoscale eddies and deep ocean dynamical processes, including low-frequency flows, internal waves and ocean mixing, are examined using observations from a collection of moored instruments located near the crest of the East Pacific Rise (EPR) between 9 and 10N. First, the relationship between mesoscale eddies and subinertial flows in the deep ocean over the EPR were examined. The subinertial velocities at depth are significantly correlated with geostrophic near-surface currents, which are dominated by westward-propagating mesoscale eddies. It is concluded that the subinertial velocity near the EPR crest is a super-position of velocities associated with eddies propagating westward across the ridge and "topographic flows". Second, the relationship between subinertial flows and internal waves were investigated. The observations reveal subinertial modulations of internal waves, particularly near-inertial oscillations and internal tides. These subinertial modulations are highly correlated with the subinertial flows in the deep ocean. Third, based on a finescale parameterization model, the deep ocean diapycnal diffusivity over the ridge crest was estimated. The estimated diapycnal diffusivity shows variation on the subinertial time scale. In particular, the measurements imply a significant increase in diapycnal diffusivity near the seafloor during episodes of increased subinertial flow. Fourth, combined with previous numerical and theoretical studies, the observations imply energy transfer near the crest of the EPR from low-frequency flows, including mesoscale eddies, to near-inertial oscillations, turbulence and mixing. Considering the ubiquitousness of mesoscale eddies in the ocean, it is expected that the circulation near other portions of the global mid-ocean ridge system is similarly dominated by mesoscale variability and topographic effects. This is particularly important for dispersal of larvae and geochemical tracers associated with hydrothermal sources that are found primarily along the crest of mid-ocean ridges. Also, the observed eddy-modulated mixing is expected to be useful for validating and improving numerical-model parameterizations of turbulence and mixing in the ocean. Furthermore, since the frequency and intensity of mesoscale eddies depend on the state of the climate, the observed eddy modulation of deep ocean mixing connects climate change and climate variability to physical and biogeochemical dynamics in the deep ocean and implies an unexplored feedback mechanism potentially affecting the global climate system.
机译:中尺度涡旋在世界海洋中无处不在,并在亚惯性时间尺度上主导着能量含量。但是,由于缺乏来自深海的原位数据,以前的大多数工作都集中在海面附近的信号上,也就是说,深海中尺度涡旋的信号及其对深海动力学的影响并未尚未深入研究。在这篇论文中,中尺度涡旋与深海动力过程之间的联系,包括低频流动,内波和海洋混合,是利用位于东太平洋上升波峰(EPR)附近的一系列系泊仪器的观测资料进行研究的。 9和10N。首先,研究了EPR深海中尺度涡旋与亚惯性流之间的关系。深处的亚惯性速度与地转近地流密切相关,地转流以西向传播的中尺度涡旋为主。结论是,EPR波峰附近的亚惯性速度是与涡旋向西传播穿过山脊和“地形流动”相关的速度的叠加。其次,研究了惯性流与内波之间的关系。观测结果揭示了内部波的惯性调制,特别是接近惯性的振荡和内部潮汐。这些次惯性调制与深海中的次惯性流动高度相关。第三,基于精细尺度参数化模型,估算了脊顶上深海的对流扩散率。估计的对向扩散率显示出亚惯性时间尺度的变化。特别是,这些测量结果表明,在惯性流增加的情况下,海底附近的辉石扩散率显着增加。第四,结合先前的数值和理论研究,这些观测结果暗示了EPR波峰附近的能量从低频流动(包括中尺度涡流)转移到近惯性振荡,湍流和混合。考虑到海洋中尺度涡旋的普遍性,预计全球中海脊系统其他部分附近的环流同样受到中尺度变化和地形影响的支配。这对于散布与水热源相关的幼虫和地球化学示踪剂尤为重要,这些热液源主要分布在中海洋脊顶。同样,观察到的涡流调制混合有望用于验证和改进海洋中湍流和混合的数值模型参数化。此外,由于中尺度涡旋的频率和强度取决于气候状况,因此深海混合的涡旋调制将气候变化和气候变率与深海的物理和生物地球化学动力学联系起来,并暗示了尚未探索的反馈机制可能影响深海海洋生物。全球气候系统。

著录项

  • 作者

    Liang Xinfeng;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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