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Hydrodynamic interaction of a self-propelling particle with a wall

机译:自推进粒子与墙壁的流体动力学相互作用

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Using lattice Boltzmann simulations we study the hydrodynamics of an active spherical particle near a no-slip wall. We develop a computational model for an active Janus particle, by considering different and independent mobilities on the two hemispheres and compare the behaviour to a standard squirmer model. We show that the topology of the far-field hydrodynamic nature of the active Janus particle is similar to the standard squirmer model, but in the near-field the hydrodynamics differ. In order to study how the near-field effects affect the interaction between the particle and a flat wall, we compare the behaviour of a Janus swimmer and a squirmer near a no-slip surface via extensive numerical simulations. Our results show generally a good agreement between these two models, but they reveal some key differences especially with low magnitudes of the squirming parameter beta. Notably the affinity of the particles to be trapped at a surface is increased for the active Janus particles when compared to standard squirmers. Finally, we find that when the particle is trapped on the surface, the velocity parallel to the surface exceeds the bulk swimming speed and scales linearly with |beta|.
机译:使用格子Boltzmann模拟,我们研究了无滑墙附近的主动球形颗粒的流体动力学。我们通过考虑两个半球上的不同和独立的迁移率,为主动Janus粒子开发一个有效的Janus粒子的计算模型,并将行为与标准杀伤模型进行比较。我们表明,活性Janus粒子的远场流体动力学性质的拓扑类似于标准杀伤模型,但在近场中流体动力学不同。为了研究近场效果如何影响粒子和扁平壁之间的相互作用,我们通过广泛的数值模拟比较Janus Swinmer和Dirmer附近的杀虫剂的行为。我们的结果一般表明这两种型号之间的良好一致性,但它们揭示了一些关键差异,特别是蠕动参数β的低幅度。值得注意的是,与标准碎屑相比,活性Janus颗粒的颗粒在表面上被捕获的亲和力增加。最后,我们发现当颗粒被捕获到表面上时,与表面平行的速度超过散装游泳速度并线性地缩放|β|。

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