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On Shear-Driven Ventilation of Snow

机译:关于雪的剪切驱动通风

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A series of experiments have been made in a wind tunnel to investigate the ventilation of snow by shear. We argue that the zero-plane displacement can be used as a convenient indicator of ventilation, and that this can be obtained from measurements of mean velocity profiles in conditions of zero pressure gradient. Measurements made over a natural snow surface show a zero-plane displacement depth of less than 5 mm, but practical considerations preclude extensive use of snow for these measurements. Instead, the influence of permeability is investigated using reticulated foams in place of snow. We demonstrate that the foam and snow have similar structure and flow-relevant properties. Although the surface of the foam is flat, the roughness lengths increase by two orders of magnitude as the permeability increases from 6 x 10 super(-9) to 160 x 10 super(-9) m super(2). The zero-plane displacement for the least permeable foams is effectively zero, but more than 15 mm for the most permeable foams. Our data compare well to the few studies available in the literature. By analogy to conditions over snow surfaces, we suggest that shear-driven ventilation of snow is therefore limited to the upper few millimetres of snow surfaces.
机译:在风洞中进行了一系列实验,以研究雪的剪切通风情况。我们认为,零平面位移可以用作通气的方便指示器,并且可以从零压力梯度条件下的平均速度曲线测量中获得。在自然积雪表面上进行的测量显示零平面位移深度小于5 mm,但实际考虑因素不允许在这些测量中广泛使用积雪。相反,使用网状泡沫代替雪来研究渗透率的影响。我们证明泡沫和雪具有相似的结构和与流量相关的特性。尽管泡沫的表面是平坦的,但随着渗透率从6 x 10 super(-9)增加到160 x 10 super(-9)m super(2),粗糙度长度会增加两个数量级。渗透性最低的泡沫的零平面位移实际上为零,但渗透性最高的泡沫的零平面位移大于15 mm。我们的数据与文献中的少量研究相比较。通过类比雪表面的条件,我们建议将剪切驱动的雪通风限制在雪表面的上几毫米。

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