论文标题

惯性拖放问题:旋转光盘上的床单和电影

Inertial drag-out problem : sheets and films on a rotating disc

论文作者

Jerome, J. John Soundar, Thevenin, Sébastien, Bourgoin, Mickaël, Matas, Jean-Philippe

论文摘要

所谓的Landau-levich-deryaguin问题治疗了被移动的固体表面夹带的薄粘性液体膜的涂料流动动力学。在这种情况下,我们使用一个简单的实验设置,该设置由液体储罐中部分脱落的旋转盘组成,以研究惯性和曲率在液体夹带中的作用。使用水和UCON $^{\ mbox {tm}} $混合物,我们指出了在存在强惯性的情况下的丰富现象学:在椎间盘的新兴侧射出多个液体板,薄片碎片,韧带形成和液体液体磁盘的液体散发器。我们将研究重点放在单个液体板上,以及针对各种深度与拉迪乌斯比$ h/r <1 $的相关平均液体流量。我们表明,液体板是通过弹道机构创建的,因为旋转盘将液体从池中提出。然后,我们表明,尽管经典的landau-levich-deryaguin问题在夹带的液体膜中的流速受到粘性和表面张力的控制,尽管尽管有三个维度,但基于薄膜厚度的流量较大,但流动的流量具有三维,不均匀且不稳定的性质。当特征性的Froude和Weber数量变得显着时,强大的惯性影响会影响圆盘上夹带的液体通量在巨大的半径与放射线深度,即通过盘的侧壁夹带,分别通过从3D液体本身中提取的流量贡献。

The so-called Landau-Levich-Deryaguin problem treats the coating flow dynamics of a thin viscous liquid film entrained by a moving solid surface. In this context, we use a simple experimental set-up consisting of a partially-immersed rotating disc in a liquid tank to study the role of inertia, and also curvature, on liquid entrainment. Using water and UCON$^{\mbox{TM}}$ mixtures, we point out a rich phenomenology in the presence of strong inertia : ejection of multiple liquid sheets on the emerging side of the disc, sheet fragmentation, ligament formation and atomization of the liquid flux entrained over the disc's rim. We focus our study on a single liquid sheet and the related average liquid flow rate entrained over a thin disc for various depth-to-radius ratio $h/R < 1$. We show that the liquid sheet is created via a ballistic mechanism as liquid is lifted out of the pool by the rotating disc. We then show that the flow rate in the entrained liquid film is controlled by both viscous and surface tension forces as in the classical Landau-Levich-Deryaguin problem despite the three dimensional, non-uniform and unsteady nature of the flow, and also despite the large values of the film thickness based flow Reynolds number. When the characteristic Froude and Weber numbers become significant, strong inertial effects influence the entrained liquid flux over the disc at large radius-to-immersion-depth ratio, namely via entrainment by the disc's lateral walls and via a contribution to the flow rate extracted from the 3D liquid sheet itself, respectively.

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