Koolivand Abdollah, Dimitrakopoulos Panagiotis
Department of Chemical and Biomolecular Engineering, University of Maryland, College Park, MD 20742, USA.
Polymers (Basel). 2020 May 17;12(5):1144. doi: 10.3390/polym12051144.
Even though the research interest in the last decades has been mainly focused on the capsule dynamics in cylindrical or rectangular ducts, channels with asymmetric cross-sections may also be desirable especially for capsule migration and sorting. Therefore, in the present study we investigate computationally the motion of an elastic spherical capsule in an isosceles trapezoidal microchannel at low and moderate flow rates under the Stokes regime. The steady-state capsule location is quite close to the location where the single-phase velocity of the surrounding fluid is maximized. Owing to the asymmetry of the trapezoidal channel, the capsule's steady-state shape is asymmetric while its membrane slowly tank-treads. In addition, our investigation reveals that tall trapezoidal channels with low base ratios produce significant off-center migration for large capsules compared to that for smaller capsules for a given channel length. Thus, we propose a microdevice for the sorting of artificial and physiological capsules based on their size, by utilizing tall trapezoidal microchannels with low base ratios. The proposed sorting microdevice can be readily produced via glass fabrication or as a microfluidic device via micromilling, while the required flow conditions do not cause membrane rupture.
尽管在过去几十年中,研究兴趣主要集中在圆柱形或矩形管道中的胶囊动力学,但具有不对称横截面的通道对于胶囊迁移和分选可能也是理想的。因此,在本研究中,我们通过计算研究了在斯托克斯流态下,等腰梯形微通道中弹性球形胶囊在低流速和中等流速下的运动。胶囊的稳态位置非常接近周围流体单相速度最大的位置。由于梯形通道的不对称性,胶囊的稳态形状是不对称的,同时其膜缓慢地做坦克履带式运动。此外,我们的研究表明,对于给定的通道长度,与较小的胶囊相比,具有低底比的高梯形通道会使大胶囊产生显著的偏心迁移。因此,我们提出了一种基于尺寸对人工和生理胶囊进行分选的微器件,该器件利用具有低底比的高梯形微通道。所提出的分选微器件可以通过玻璃制造轻松生产,或者通过微铣削作为微流体器件生产,同时所需的流动条件不会导致膜破裂。