Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544.
Proc Natl Acad Sci U S A. 2022 Aug 2;119(31):e2202082119. doi: 10.1073/pnas.2202082119. Epub 2022 Jul 28.
Advances in microfabrication enable the tailoring of surfaces to achieve optimal sorting, mixing, and focusing of complex particulate suspensions in microfluidic devices. Corrugated surfaces have proved to be a powerful tool to manipulate particle motion for a variety of applications, yet the fundamental physical mechanism underlying the hydrodynamic coupling of the suspended particles and surface topography has remained elusive. Here, we study the hydrodynamic interactions between sedimenting spherical particles and nearby corrugated surfaces, whose corrugations are tilted with respect to gravity. Our experiments show three-dimensional, helical particle trajectories with an overall drift along the corrugations, which agree quantitatively with our analytical perturbation theory. The theoretical predictions reveal that the interaction of the disturbance flows, induced by the particle motion, with the corrugations generates locally a transverse anisotropy of the pressure field, which explains the helical dynamics and particle drift. We demonstrate that this dynamical behavior is generic for various surface shapes, including rectangular, sinusoidal, and triangular corrugations, and we identify surface characteristics that produce an optimal particle drift. Our findings reveal a universal feature inherent to particle transport near patterned surfaces and provide fundamental insights for future microfluidic applications that aim to enhance the focusing or sorting of particulate suspensions.
微制造技术的进步使得能够对表面进行定制,以在微流控设备中实现复杂颗粒悬浮液的最佳分类、混合和聚焦。波纹表面已被证明是一种用于操纵各种应用中颗粒运动的强大工具,但悬浮颗粒与表面形貌的水动力耦合的基本物理机制仍然难以捉摸。在这里,我们研究了沉降球形颗粒与附近波纹表面之间的水动力相互作用,其中波纹相对于重力倾斜。我们的实验显示了具有沿波纹整体漂移的三维螺旋状颗粒轨迹,这与我们的分析摄动理论定量一致。理论预测表明,由颗粒运动引起的干扰流与波纹的相互作用在局部产生压力场的横向各向异性,这解释了螺旋动力学和颗粒漂移。我们证明了这种动力学行为对于各种表面形状(包括矩形、正弦和三角形波纹)都是通用的,并且我们确定了产生最佳颗粒漂移的表面特征。我们的发现揭示了颗粒在图案化表面附近输运所固有的普遍特征,并为未来旨在增强颗粒悬浮液聚焦或分类的微流控应用提供了基本的见解。