论文标题

在墙壁附近升起的一对气泡的粘性渗透相互作用上

On viscid-inviscid interactions of a pair of bubbles rising near the wall

论文作者

Maeda, Kazuki, Date, Masanobu, Sugiyama, Kazuyasu, Takagi, Shu, Matsumoto, Yoichiro

论文摘要

在湍流气泡流动上进行的一系列实验观察到墙附近的气泡簇,这些气泡簇可以改变大规模的流量结构。为了洞悉聚类机制,我们通过组合实验和建模研究了一对球形气泡在垂直通道中上升的相互作用。实验成像可以识别直径为1.0毫米的成对气泡取决于它们的相互距离:短距离($ s <5 $)的并排位置($ s <5 $)和几乎是内联的,长距离($ s> 5 $)的斜位置($ s> 5 $),$ s $是$ S $的相互距离,是由Bubble radius标准化的。在模型中,我们制定了以$ re = o(100)$上升的成对气泡的动作。分析阻力和升力以及半经验的时空随机强迫分别用于代表平均加速度和由于湍流搅动而引起的波动。通过比较气泡的拉格朗日统计数据,对该模型进行了验证。使用此模型的仿真确定了两个不同的交互动力学时间尺度,阐明了首选配置。对于最初,尾巴泡沫从领先的泡沫的粘性尾巴迅速逃脱,沿倾斜的位置迅速逃脱。在唤醒之外,尾巴的气泡在曲线线路径上行驶,其速度较慢,速度较慢,由潜在的相互作用驱动,并水平接近前导气泡并排。此外,统计分析表明,唤醒和搅拌的组合可以显着加速在线对的并排聚类。这些结果表明液态粘度和湍流对气泡簇的形成有积极的贡献。

Series of experiments on turbulent bubbly channel flows observed bubble clusters near the wall which can change large-scale flow structures. To gain insights into clustering mechanisms, we study the interaction of a pair of spherical bubbles rising in a vertical channel through combined experiments and modeling. Experimental imaging identifies that pairwise bubbles of 1.0 mm diameter take two preferred configurations depending on their mutual distance: side-by-side positions for a short distance ($S<5$) and nearly inline, oblique positions for a long distance ($S>5$), where $S$ is the mutual distance normalized by the bubble radius. In the model, we formulate the motions of pairwise bubbles rising at $Re=O(100)$. Analytical drag and lift, and semi-empirical, spatio-temporal stochastic forcing are employed to represent the mean acceleration and the fluctuation due to turbulent agitation, respectively. The model is validated against the experiment through comparing Lagrangian statistics of the bubbles. Simulations using this model identify two distinct timescales of interaction dynamics which elucidate the preferred configurations. For pairs initially in-line, the trailing bubble rapidly escapes from the viscous wake of the leading bubble to take the oblique position. Outside of the wake, the trailing bubble travels on a curve-line path with a slower velocity driven by potential interaction and horizontally approaches the leading bubble to become side-by-side. Moreover, statistical analysis identifies that the combination of the wake and the agitation can significantly accelerate the side-by-side clustering of in-line pairs. These results indicate positive contributions of liquid viscosity and turbulence to the formation of bubble clusters.

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