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首页> 外文期刊>International journal of applied mechanics >Anisotropic Spreading of Bubbles on Superaerophilic Straight Trajectories beneath a Slide in Water
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Anisotropic Spreading of Bubbles on Superaerophilic Straight Trajectories beneath a Slide in Water

机译:在水中幻灯片下的超友粒细胞直轨迹泡沫的各向异性扩散

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Although the bubble contacting a uniformly superaerophilic surface has caused concern due to its application potential in various engineering equipment, such as mineral flotation, very little is known about the mechanism of how the bubble spreads on a surface with anisotropic superaerophilicity. To unveil this mystery, we experimentally studied the anisotropic behavior of a bubble (2 mm in diameter) spreading on the superaerophilic straight trajectories (SALTs) of different widths (0.5 mm-5 mm) in water using a high-speed shadowgraphy system. The 1-3 bounces mostly happened as the bubble approached the SALTs before its spreading. It is first observed that the bubble would be split into two highly symmetrical sub-bubbles with similar migration velocity in opposite directions during the anisotropic spreading. Two essential mechanisms are found to be responsible for the anisotropic spreading on the narrow SALTs (W <= 2 mm with two subregimes) and the wide SALTs (W >= 3 mm with four subregimes). Considering the combined effect of the surface tension effect of SALT and Laplace pressure, a novel model has been developed to predict the contact size r(t) as a function of time. The nice agreement between this model and our experiments reconfirms that the surface tension effect and Laplace pressure prevail over the hydrostatic pressure.
机译:虽然接触均匀超级渗透性表面的气泡由于其各种工程设备(例如矿物浮选)的应用势,但是关于矿物浮选的机制很少,但是泡沫如何在具有各向异性超级友好性的表面上蔓延的机制。为了推出这种神秘,我们通过高速影像系统研究了使用高速影像造影系统在水中的超级频道直流轨迹(盐)在水中的超级粒细胞直轨(盐)的各向异性行为。由于泡沫在蔓延之前,泡沫接近盐,1-3的反弹主要发生。首先观察到气泡将被分成两个高度对称的子气泡,在各向异性扩散期间具有相反方向的具有相似的迁移速度。发现两个基本机制负责对窄盐上的各向异性散布(具有两个子标记的W <= 2mm)和宽盐(W> = 3mm,具有四个子标记)。考虑到盐和拉拉普拉斯压力的表面张力效果的组合效果,已经开发了一种新型模型来预测接触尺寸R(T)作为时间的函数。该模型与我们的实验之间的良好一致性重新确认了表面张力效应和拉普拉斯压力在静水压力上占上风。

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