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Oxycline oscillations induced by internal waves in deep Lake Iseo

机译:伊塞奥湖深部内部波引起的氧循环振荡

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Lake Iseo is undergoing a dramatic deoxygenation of the hypolimnion, representing an emblematic example among the deep lakes of the pre-alpine area that are, to a different extent, undergoing reduced deep-water mixing. In the anoxic deep waters, the release and accumulation of reduced substances and phosphorus from the sediments are a major concern. Because the hydrodynamics of this lake was shown to be dominated by internal waves, in this study we investigated, for the first time, the role of these oscillatory motions on the vertical fluctuations of the oxycline, currently situated at a depth of approximately 95?m, where a permanent chemocline inhibits deep mixing via convection. Temperature and dissolved oxygen data measured at moored stations show large and periodic oscillations of the oxycline, with an amplitude of up to 20?m and periods ranging from 1 to 4?days. Deep motions characterized by larger amplitudes at lower frequencies are favored by the excitation of second vertical modes in strongly thermally stratified periods and of first vertical modes in weakly thermally stratified periods, when the deep chemical gradient can support baroclinicity regardless. These basin-scale internal waves cause a fluctuation in the oxygen concentration between 0 and 3?mg?L sup?1/sup in the water layer between 85 and 105?m in depth, changing the redox condition at the sediment surface. This forcing, involving approximately 3?% of the lake's sediment area, can have major implications for the biogeochemical processes at the sediment–water interface and for the internal matter cycle.
机译:伊塞奥湖正在经历一次次富集的大幅度脱氧反应,这代表了高山前地区深湖中的一个典型例子,这些湖泊在不同程度上减少了深水的混合。在缺氧的深水中,沉积物中还原性物质和磷的释放和积累是一个主要问题。由于该湖的水动力被内波控制,因此在本研究中,我们首次研究了这些振荡运动对当前深度约为95?m的奥克西林垂直波动的作用。 ,其中永久性趋化霉素通过对流抑制深度混合。在停泊站测得的温度和溶解氧数据显示,氧氯霉素的振荡周期较大,幅度最大为20?m,周期为1-4天。当深化学梯度无论如何都可支持斜压时,在强烈热分层期间激发第二种垂直模式,在弱热分层期间激发第一种垂直模式,有助于以较低频率处的较大振幅为特征的深部运动。这些盆地规模的内部波在深度为85至105?m的水层中引起氧浓度在0至3?mg?L ?1 之间波动,从而改变了沉积物的氧化还原条件。表面。这种强迫作用大约占湖泊沉积物面积的3%,可能会对沉积物-水界面的生物地球化学过程以及内部物质循环产生重大影响。

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