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变形胶囊的惯性迁移和轴向控制。

Inertial migration and axial control of deformable capsules.

机构信息

Institute of Theoretical Physics, Technical University Berlin, Hardenbergstr. 36, 10623 Berlin, Germany.

出版信息

Soft Matter. 2017 May 21;13(19):3544-3555. doi: 10.1039/c7sm00339k. Epub 2017 Apr 26.

Abstract

The mechanical deformability of single cells is an important indicator for various diseases such as cancer, blood diseases and inflammation. Lab-on-a-chip devices allow to separate such cells from healthy cells using hydrodynamic forces. We perform hydrodynamic simulations based on the lattice-Boltzmann method and study the behavior of an elastic capsule in a microfluidic channel flow in the inertial regime. While inertial lift forces drive the capsule away from the channel center, its deformability favors migration in the opposite direction. Balancing both migration mechanisms, a deformable capsule assembles at a specific equilibrium distance depending on its size and deformability. We find that this equilibrium distance is nearly independent of the channel Reynolds number and falls on a single master curve when plotted versus the Laplace number. We identify a similar master curve for varying particle radius. In contrast, the actual deformation of a capsule strongly depends on the Reynolds number. The lift-force profiles behave in a similar manner as those for rigid particles. Using the Saffman effect, the capsule's equilibrium position can be controlled by an external force along the channel axis. While rigid particles move to the center when slowed down, very soft capsules show the opposite behavior. Interestingly, for a specific control force particles are focused on the same equilibrium position independent of their deformability.

摘要

单细胞的机械变形能力是癌症、血液疾病和炎症等各种疾病的一个重要指标。芯片实验室设备允许使用流体动力将这些细胞与健康细胞分离。我们基于晶格玻尔兹曼方法进行流体动力学模拟,并研究了在惯性区微通道流中弹性胶囊的行为。虽然惯性升力将胶囊从通道中心推开,但胶囊的变形能力使其倾向于向相反方向迁移。在这两种迁移机制达到平衡时,具有一定尺寸和变形能力的可变形胶囊会在特定的平衡距离处聚集。我们发现,这个平衡距离几乎与通道雷诺数无关,当绘制为拉普拉斯数的函数时,它落在一个单一的主曲线上。我们还发现了一个类似的主曲线,用于变化的粒子半径。相比之下,胶囊的实际变形强烈依赖于雷诺数。升力曲线的行为与刚性粒子相似。通过使用萨夫曼效应,可以通过沿通道轴的外力来控制胶囊的平衡位置。当刚性粒子减速时,它们会向中心移动,而非常软的胶囊则会表现出相反的行为。有趣的是,对于特定的控制力,粒子会在相同的平衡位置聚焦,而与它们的变形能力无关。

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