Backlit Imaging of a Circular Plunging Jet With Floor Interactions

Roy A. Pillers, T. Heindel
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Abstract

Plunging jets occur when a liquid stream enters a slower moving or stationary liquid body after first passing through a gaseous region. The most commonly studied plunging jet structure is that of water entering water. Plunging jets have been studied in order to understand and model mixing and transport from the atmosphere into the liquid. Shear forces at the edge of the jet cause air entrainment both in the free jet and at the impact point on the pool surface. Plunging jet applications range from large scale environments, such as ocean waves, waterfalls, wastewater treatment, and dams, to small scale environments, such as liquid-gas fuel mixing, mineral separation, and molten metal pouring. The majority of the literature today involve facilities designed to approximate an infinite liquid pool; few of these studies take into account the compression effects prevalent in several of the real systems. Therefore, a tank has been developed for the visualization of plunging jet flows with varying pool depth. This study involved the creation of a 32 cm by 32 cm, 91.4 cm deep rectangular acrylic tank with an interior adjustable acrylic bottom for the visualization of plunging jet flows with bottom compression effects. The pool height was held constant using a secondary tank with an overflow weir. In this study high-speed backlit images were taken of the plunging jet region. Preliminary results indicate that there is a significant change in both the shape and estimated entrained air volume when the plunging jet is subjected to compression effects. This is attributed to the plate spreading the bubble plume and allowing for easier bubble rise.
具有地面相互作用的圆形俯冲射流的背光成像
当液体流首先穿过气体区域进入一个缓慢运动或静止的液体体时,就会发生俯冲射流。研究最多的俯冲射流结构是水入水射流。为了理解和模拟从大气到液体的混合和传输,研究了俯冲射流。射流边缘的剪切力会在自由射流和池表面的撞击点处引起空气夹带。俯冲射流的应用范围从大型环境,如海浪、瀑布、废水处理和水坝,到小型环境,如液气燃料混合、矿物分离和熔融金属浇注。今天的大多数文献都涉及设计成近似无限液体池的设施;这些研究中很少考虑到在几个实际系统中普遍存在的压缩效应。因此,开发了一种用于显示不同池深的俯冲射流的水槽。这项研究包括创建一个32厘米乘32厘米,深91.4厘米的矩形丙烯酸水箱,其内部可调节丙烯酸底部,用于可视化具有底部压缩效果的俯冲射流。使用带溢流堰的二级水箱保持水池高度不变。在这项研究中,高速背光图像拍摄了俯冲射流区域。初步结果表明,当射流受到压缩作用时,射流的形状和预估夹带风量都发生了显著变化。这是由于板块扩散了气泡羽流,使得气泡更容易上升。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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