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Flutter to tumble transition of buoyant spheres triggered by rotational inertia changes

机译:由旋转惯性变化触发的浮球从振颤到滚落过渡

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摘要

Heavy particles sink straight in water, while buoyant bubbles and spheres may zigzag or spiral as they rise. The precise conditions that trigger such path-instabilities are still not completely understood. For a buoyant rising sphere, two parameters are believed to govern the development of unsteady dynamics: the particle’s density relative to the fluid, and its Galileo number. Consequently, with these parameters specified, the opportunities for variation in particle dynamics appear limited. In contrast to this picture, here we demonstrate that vigorous path-oscillations can be triggered by modulating a spherical particle’s moment of inertia (MoI). For a buoyant sphere rising in a turbulent flow, MoI reduction triggers a tumble–flutter transition, while in quiescent liquid, it induces a modification of the sphere wake resulting in large-amplitude path-oscillations. The present finding opens the door for control of particle path- and wake-instabilities, with potential for enhanced mixing and heat transfer in particle-laden and dispersed multiphase environments.
机译:重粒子直接沉入水中,而漂浮的气泡和球体在上升时可能会呈锯齿状或螺旋形。触发这种路径不稳定性的精确条件仍未完全理解。对于浮力上升的球形,据信两个参数可以控制非稳态动力学的发展:粒子相对于流体的密度及其伽利略数。因此,在指定这些参数的情况下,粒子动力学变化的机会似乎受到限制。与这张图片相反,在这里我们证明可以通过调制球形粒子的惯性矩(MoI)来触发剧烈的路径振荡。对于在湍流中上升的浮球,MoI降低会触发滚滚—扑动过渡,而在静态液体中,它会引起对球尾流的修改,从而导致大幅度的路径振荡。本发现为控制颗粒路径和尾流不稳定性打开了大门,并有望在充满颗粒和分散的多相环境中增强混合和传热。

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