The effects of suspending fluid viscoelasticity on the mechanical properties of capsules and red blood cells in flow

IF 2.7 2区 工程技术 Q2 MECHANICS
Boon Siong Neo , Eric S.G. Shaqfeh
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Abstract

The mechanical behavior of spherical capsules and red blood cells in shear and confined pressure-driven flow of polymeric fluids was studied computationally. In particular, we study the effect of suspending fluid elasticity on the steady mechanical behavior of spherical capsules and red blood cells suspended in an Oldroyd-B fluid, in dilute shear and confined pressure-driven flow, as a model system for dilute suspensions of capsules in polymeric fluids. We investigate the effects of suspending fluid elasticity at fixed capillary number on the capsule deformation, membrane tensions, and effective viscosity for a range of capsule capillary numbers. For both spherical capsules and red blood cells, capsule deformation was found to decrease with increasing fluid elasticity in shear flow, and increase in confined pressure-driven flow. The average membrane tension for spherical capsules was found to follow the same trends: decreasing in shear and increasing in pressure-driven flow; however, the average membrane tension for red blood cells had a less pronounced trend with fluid elasticity, which we attribute to the reduced volume of the red blood cell. On the other hand, the effective viscosity of the suspension was found to be non-monotonic with an increase in suspending fluid elasticity for both flows and particle types. The underlying mechanisms for these trends were investigated by comparing these capsule simulations to results from rigid spherical particles. These results indicate that the mechanical behavior of these dilute capsule suspensions can be qualitatively understood by examining the disturbance flow created by the introduction of rigid spherical particles, and the subsequent stress induced in the polymeric fluid to these disturbances.

悬浮液粘弹性对流动中胶囊和红细胞机械特性的影响
我们通过计算研究了球形胶囊和红细胞在聚合物流体的剪切和约束压力驱动流动中的机械行为。特别是,我们研究了悬浮液弹性对悬浮在奥尔德罗伊德-B 流体中的球形胶囊和红细胞在稀剪切和约束压力驱动流动中的稳定力学行为的影响,以此作为聚合物流体中胶囊稀悬浮液的模型系统。我们研究了在固定毛细管数下悬浮液弹性对一系列胶囊毛细管数下胶囊变形、膜张力和有效粘度的影响。研究发现,对于球形胶囊和红细胞,在剪切流中,胶囊变形随着流体弹性的增加而减小,而在约束压力驱动流中,胶囊变形则随着流体弹性的增加而增大。我们发现球形胶囊的平均膜张力也有相同的趋势:在剪切流中减小,在压力驱动流中增大;然而,红细胞的平均膜张力随流体弹性的变化趋势并不明显,我们将其归因于红细胞体积的减小。另一方面,我们发现悬浮液的有效粘度与悬浮液弹性的增加不呈单调关系,这与流动和颗粒类型有关。通过将这些胶囊模拟结果与刚性球形颗粒的结果进行比较,研究了这些趋势的基本机制。这些结果表明,通过研究引入刚性球形颗粒所产生的扰动流,以及随后聚合物流体对这些扰动所产生的应力,可以定性地理解这些稀释胶囊悬浮液的机械行为。
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来源期刊
CiteScore
5.00
自引率
19.40%
发文量
109
审稿时长
61 days
期刊介绍: The Journal of Non-Newtonian Fluid Mechanics publishes research on flowing soft matter systems. Submissions in all areas of flowing complex fluids are welcomed, including polymer melts and solutions, suspensions, colloids, surfactant solutions, biological fluids, gels, liquid crystals and granular materials. Flow problems relevant to microfluidics, lab-on-a-chip, nanofluidics, biological flows, geophysical flows, industrial processes and other applications are of interest. Subjects considered suitable for the journal include the following (not necessarily in order of importance): Theoretical, computational and experimental studies of naturally or technologically relevant flow problems where the non-Newtonian nature of the fluid is important in determining the character of the flow. We seek in particular studies that lend mechanistic insight into flow behavior in complex fluids or highlight flow phenomena unique to complex fluids. Examples include Instabilities, unsteady and turbulent or chaotic flow characteristics in non-Newtonian fluids, Multiphase flows involving complex fluids, Problems involving transport phenomena such as heat and mass transfer and mixing, to the extent that the non-Newtonian flow behavior is central to the transport phenomena, Novel flow situations that suggest the need for further theoretical study, Practical situations of flow that are in need of systematic theoretical and experimental research. Such issues and developments commonly arise, for example, in the polymer processing, petroleum, pharmaceutical, biomedical and consumer product industries.
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