论文标题
散装流量与边界条件之间的相互作用在通道流中微弹药器分布的分布
The interplay between bulk flow and boundary conditions on the distribution of micro-swimmers in channel flow
论文作者
论文摘要
虽然先前对稀微型运动器悬架的实验和数值研究集中在散装流程和接近边界中游泳者的行为上,但模型通常不考虑散装流量和连续模型中施加的边界条件的选择之间的相互作用。在我们的工作中,我们强调了边界条件对散装流量分布的影响,例如通过边界层的发展或散装流游泳器动力学中细胞积累的次级峰。对于Poiseuille流量中稀释的游泳者悬浮液的情况,我们比较了从基于单个的随机模型获得的分布(在物理和定向空间中)与连续模型的分布,并确定数学上明智的连续性边界条件的不同物理场景(即,镜面反射,均匀的随机反射和吸收的边界)。我们确定优选细胞取向的扩散取决于剪切流(Jeffery Orbits)和旋转扩散驱动的旋转之间的相互作用。我们发现,在没有流体动力壁互动的情况下,游泳者优先在高旋转扩散的情况下优先接近垂直于表面的壁,并且在低旋转扩散时游泳者对墙壁的优先接近(当悬浮液趋于完全确定性的情况下)。在后一种情况下,首选方向几乎与表面平行于伸长的游泳者,而几乎垂直于表面的近似游泳者。此外,我们强调了游泳者几何形状和整个散装轨迹对游泳运动员轨迹的影响,并展示了散装动力学的完整历史如何影响微游泳器墙发生率的方向分布。
While previous experimental and numerical studies of dilute micro-swimmer suspensions have focused on the behaviours of swimmers in the bulk flow and near boundaries, models typically do not account for the interplay between bulk flow and the choice of boundary conditions imposed in continuum models. In our work, we highlight the effect of boundary conditions on the bulk flow distributions, such as through the development of boundary layers or secondary peaks of cell accumulation in bulk-flow swimmer dynamics. For the case of a dilute swimmer suspension in Poiseuille flow, we compare the distribution (in physical and orientation space) obtained from individual based stochastic models with those from continuum models, and identify mathematically sensible continuum boundary conditions for different physical scenarios (i.e. specular reflection, uniform random reflection and absorbing boundaries). We identify that the spread of preferred cell orientations is dependent on the interplay between rotation driven by the shear flow (Jeffery orbits) and rotational diffusion. We find that in the absence of hydrodynamic wall-interactions, swimmers preferentially approach the walls perpendicular to the surface in the presence of high rotational diffusion, and that the preferential approach of swimmers to the walls is shape-dependent at low rotational diffusion (when suspensions tend towards a fully deterministic case). In the latter case, the preferred orientations are nearly parallel to the surface for elongated swimmers and nearly perpendicular to the surface for near-spherical swimmers. Furthermore, we highlight the effects of swimmer geometries and shear throughout the bulk-flow on swimmer trajectories and show how the full history of bulk-flow dynamics affects the orientation distributions of micro-swimmer wall incidence.