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湍流中浮游动物行为间歇性的特征描述。

Characterization of intermittency in zooplankton behaviour in turbulence.

作者信息

Michalec François-Gaël, Schmitt François G, Souissi Sami, Holzner Markus

机构信息

Institute of Environmental Engineering, ETH Zurich, Stefano-Franscini-Platz 5, 8093, Zurich, Switzerland.

UMR 8187, LOG, Laboratoire d'Océanologie et de Géosciences, CNRS, Univ. Lille, Univ. Littoral Cote d'Opale, F62930, Wimereux, France.

出版信息

Eur Phys J E Soft Matter. 2015 Oct;38(10):108. doi: 10.1140/epje/i2015-15108-2. Epub 2015 Oct 22.

Abstract

We consider Lagrangian velocity differences of zooplankters swimming in still water and in turbulence. Using cumulants, we quantify the intermittency properties of their motion recorded using three-dimensional particle tracking velocimetry. Copepods swimming in still water display an intermittent behaviour characterized by a high probability of small velocity increments, and by stretched exponential tails. Low values arise from their steady cruising behaviour while heavy tails result from frequent relocation jumps. In turbulence, we show that at short time scales, the intermittency signature of active copepods clearly differs from that of the underlying flow, and reflects the frequent relocation jumps displayed by these small animals. Despite these differences, we show that copepods swimming in still and turbulent flow belong to the same intermittency class that can be modelled by a log-stable model with non-analytical cumulant generating function. Intermittency in swimming behaviour and relocation jumps may enable copepods to display oriented, collective motion under strong hydrodynamic conditions and thus, may contribute to the formation of zooplankton patches in energetic environments.

摘要

我们研究了浮游动物在静止水中和湍流中游泳时的拉格朗日速度差异。利用累积量,我们通过三维粒子跟踪测速技术对记录到的它们的运动间歇性特征进行了量化。在静止水中游泳的桡足类动物表现出间歇性行为,其特征是小速度增量的概率很高,且具有拉伸指数尾部。低值源于它们稳定的巡航行为,而重尾则源于频繁的重新定位跳跃。在湍流中,我们表明在短时间尺度上,活跃桡足类动物的间歇性特征明显不同于底层水流的间歇性特征,并且反映了这些小动物频繁的重新定位跳跃。尽管存在这些差异,但我们表明在静止和湍流中游泳的桡足类动物属于同一间歇性类别,该类别可以用具有非解析累积量生成函数的对数稳定模型来建模。游泳行为和重新定位跳跃中的间歇性可能使桡足类动物在强流体动力学条件下表现出定向的集体运动,因此,可能有助于在高能环境中形成浮游动物斑块。

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