Dissipative Particle Dynamics Study of Strain Distribution in Capsules Deformed by Microfluidic Constrictions

N. Rajkamal, S. Vedantam
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Abstract

We present a dissipative particle dynamics (DPD) study of the deformation of capsules in microchannels. The strain in the membrane during this deformation causes the formation of temporary pores, which is termed mechanoporation. Mechanoporation is being considered as a means by which intracellular delivery of a broad range of cargo can be facilitated. In this work, we examine the strain distribution on the capsule membrane during transport of the capsule in converging-diverging microchannels of different constriction widths. The pore density is correlated to the strain in the membrane. We find that the highest strains and, consequently, the highest pore densities occur at intermediate channel widths. This occurs due to a competition of the bending of the membrane and fluid shear stresses in the flow.
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微流体收缩变形胶囊中应变分布的耗散粒子动力学研究
我们提出了微通道中胶囊变形的耗散粒子动力学(DPD)研究。在这种变形过程中,薄膜中的应变导致临时孔隙的形成,这被称为机械穿孔。机械穿孔被认为是一种可以促进细胞内运送各种货物的手段。在这项工作中,我们研究了不同收缩宽度的会聚-发散微通道中胶囊膜在运输过程中的应变分布。孔密度与膜的应变有关。我们发现,最高的应变,因此,最高的孔隙密度出现在中间通道宽度。这是由于膜的弯曲和流动中的流体剪切应力的竞争而发生的。
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CiteScore
1.70
自引率
8.30%
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