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首页> 外文期刊>Russian meteorology and hydrology >Mechanisms of Deep and Bottom Water Ventilation over the Antarctic Continental Slope
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Mechanisms of Deep and Bottom Water Ventilation over the Antarctic Continental Slope

机译:南极大陆坡深,底水通风机理

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Actual in situ observations at the Antarctic continental slope performed with eddy-resolving spatial resolution were used. As a result, some parameterizations were verified that describe the processes of instability of density flows on a sloping bottom derived during the laboratory experiments. These processes were identified based on observational data. Any changes in the bottom slope (local or general, linked to the transition of the steep slope into the deep-sea floor) lead to changes in the regime of dense water runoff. The resulting hydraulic jumps lead to the turbulent mixing and function as one of the main mechanisms of ventilation of deep and bottom water. In the areas of local bottom rubs, disturbances like leeward waves are sometimes observed at the dense water top. They cause the intrusive layering and subsequent occurrence of turbulence centers in the slope area; the eddy lenses which also take part in the slope water ventilation are sometimes observed over bottom rubs. A strong baroclinity of the Antarctic slope front (ASF) in a steep part of the slope is another mechanism of deep water ventilation. It leads to the instability of cascading, subsequent intrusive layering and eddy formation. The baroclinic instability is amplified by the increased dynamics of dense water runoff at the bottom slope increase. However, the realization of shear instability at density interface is possible but at the smaller spatial scale than the instability scales observed in the ASF area.
机译:使用在南极大陆坡上以涡旋分辨空间分辨率进行的实际原位观测。结果,验证了一些参数化,这些参数化描述了在实验室实验期间得出的在倾斜底部上的密度流的不稳定性过程。这些过程是根据观测数据确定的。底部坡度的任何变化(局部的或一般的,与陡坡向深海底的过渡有关)都会导致浓水径流状态的变化。产生的水力跃迁导致湍流混合,并作为深层和底部水通风的主要机制之一。在局部海底擦擦区域,有时在稠密的水面上观察到诸如背风的干扰。它们会在斜坡区域造成侵入性分层并随后出现湍流中心。有时在底部磨擦上也会观察到也参与坡面水通风的涡流透镜。南极斜坡前缘(ASF)在斜坡陡峭部分的强烈斜度是深水通风的另一种机制。它导致级联,随后的侵入性分层和涡流形成的不稳定性。在底部斜坡增加处,浓水径流的动力学增加,从而增加了斜压不稳定性。但是,可以在密度界面处实现剪切不稳定性,但是空间尺度要比在ASF区域中观察到的不稳定尺度小。

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