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Estimation of a characteristic friction velocity in stirred benthic chambers

机译:搅拌底栖室内特征摩擦速度的估算

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The ecology of water bodies can be greatly affected by the flux of solutes across the sediment-water interface. This solute flux is frequently measured using either benthic chambers in the field or incubated sediment cores, where in both cases the sediment is removed from the influence of the natural hydrodynamics. To compensate, the overlying water is usually stirred in some manner, e.g. with a rotating impeller, in an attempt to reproduce the natural field conditions. The hydrodynamics affect the diffusive-boundary-layer thickness, which can be one of the major controls on solute flux magnitude. Thus, a quantitative understanding of the effects of chamber stirring is vital. In this paper a characteristic friction velocity is presented as a function of a given stirrer configuration and stirring rate. The developed scaling relationship correlates well (R~2 ≈ 0.9) with previously reported friction velocities in benthic chambers, over a range of chamber configurations and sizes. It is now possible, using this equation for characteristic friction velocities, to ensure that benthic chambers experience similar turbulence intensities to natural environments, without elaborate turbulence measurements.
机译:穿过沉积物-水界面的溶质通量会极大地影响水体的生态。该溶质通量经常使用田间底栖腔室或温育的沉积物核来测量,在两种情况下,沉积物均不受自然流体动力学的影响。为了补偿,通常以某种方式搅拌上面的水,例如用尝试使用旋转叶轮重现自然场条件。流体动力学影响扩散边界层的厚度,这可能是溶质通量大小的主要控制因素之一。因此,对腔室搅拌效果的定量理解至关重要。在本文中,将特征摩擦速度作为给定搅拌器配置和搅拌速度的函数。在一系列的腔室配置和尺寸范围内,开发的比例关系与底栖腔室中先前报道的摩擦速度具有良好的相关性(R〜2≈0.9)。现在可以使用该方程式来计算特征摩擦速度,以确保底栖舱室经历与自然环境相似的湍流强度,而无需进行复杂的湍流测量。

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