Kolesnik Kirill, Pham Daniel Quang Le, Fong Jessica, Collins David John
Department of Biomedical Engineering, University of Melbourne, Melbourne, VIC 3010, Australia.
The Graeme Clark Institute, The University of Melbourne, Parkville, VIC 3010, Australia.
Micromachines (Basel). 2023 Oct 30;14(11):2024. doi: 10.3390/mi14112024.
A distinct particle focusing spot occurs in the center of a rotating fluid, presenting an apparent paradox given the presence of particle inertia. It is recognized, however, that the presence of a secondary flow with a radial component drives this particle aggregation. In this study, we expand on the examination of this "Thomson-Einstein's tea leaf paradox" phenomenon, where we use a combined experimental and computational approach to investigate particle aggregation dynamics. We show that not only the rotational velocity, but also the vessel shape, have a significant influence on a particle's equilibrium position. We accordingly demonstrate the formation of a single focusing spot in a vessel center, as has been conclusively demonstrated elsewhere, but also the repeatable formation of stable ring-shaped particle arrangements.
在旋转流体的中心出现了一个明显的粒子聚焦点,考虑到粒子的惯性,这呈现出一个明显的悖论。然而,可以认识到,具有径向分量的二次流的存在驱动了这种粒子聚集。在本研究中,我们扩展了对这种“汤姆森 - 爱因斯坦茶叶悖论”现象的研究,我们使用实验和计算相结合的方法来研究粒子聚集动力学。我们表明,不仅旋转速度,而且容器形状,对粒子的平衡位置都有显著影响。因此,我们证明了在容器中心形成单个聚焦点,正如在其他地方已经确凿证明的那样,而且还证明了稳定的环形粒子排列的可重复形成。