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Theory and calculation of sound induced particle interactions of viscous origin

机译:粘性起源的声诱发粒子相互作用的理论和计算

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In this paper a theoretical study is carried our to describe the hydrodynamic effect known as the acoustic wake effect and its influence on acoustic interactions between the particles of a suspension. The study presents a two-dimensional analysis of this hydrodynamic effect under Oseen flow conditions. The set of differential equations, which governs the acoustically induced dynamics of two close-by particles, is solved for an incident monochromatic plane wave. For the first time, a semi-analytical solution is derived to describe acoustic wake particle interactions in a two-dimensional plane, revealing attraction and repulsion patterns around the particles. A parametric study with the new model reveals strong attraction between the two interacting particles for line-of-center orientation angles from 0 degrees to 45 degrees with respect to the wave propagation direction. Only insignificant repulsion is found at angles close to 60 degrees. Trajectories of interacting particles are calculated by means of analytical integration of the equations of motion. The resulting attraction patterns closely resemble experimental findings of Hoffmann [1], displaying the so-called tuning fork trajectories. Gravitational processes are shown to have an important effect on the shape of the particle trajectories as well as on the probability of "hit" or "miss" between two interacting particles. [References: 29]
机译:在本文中,我们进行了理论研究来描述称为声唤醒效应的流体力学效应及其对悬浮液颗粒之间的声相互作用的影响。该研究提出了在Oseen流动条件下这种水动力效应的二维分析。对于入射的单色平面波,解决了控制两个邻近粒子的声感应动力学的微分方程组。首次获得了半解析解来描述二维平面中的声尾波粒子相互作用,揭示了粒子周围的吸引和排斥模式。使用新模型进行的参数研究显示,相对于波传播方向,从0度到45度的中心线方向角度,两个相互作用的粒子之间具有很强的吸引力。在接近60度的角度处仅发现很小的排斥力。相互作用粒子的轨迹是通过运动方程的解析积分来计算的。产生的吸引力模式与霍夫曼[1]的实验结果非常相似,显示了所谓的音叉轨迹。引力过程显示出对粒子轨迹的形状以及两个相互作用的粒子之间“撞击”或“缺失”的可能性具有重要影响。 [参考:29]

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