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Microfluidic rheology of active particle suspensions: Kinetic theory

机译:活性颗粒悬浮液的微流变学:动力学理论

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摘要

We analyze the effective rheology of a dilute suspension of self-propelled slender particles confined between two infinite parallel plates and subject to a pressure-driven flow. We use a continuum kinetic model to describe the configuration of the particles in the system, in which the disturbance flows induced by the swimmers are taken into account, and use it to calculate estimates of the suspension viscosity for a range of channel widths and flow strengths typical of microfluidic experiments. Our results are in agreement with previous bulk models, and in particular, demonstrate that the effect of activity is strongest at low flow rates, where pushers tend to decrease the suspension viscosity whereas pullers enhance it. In stronger flows, dissipative stresses overcome the effects of activity leading to increased viscosities followed by shear-thinning. The effects of confinement and number density are also analyzed, and our results confirm the apparent transition to superfluidity reported in recent experiments on pusher suspensions at intermediate densities. We also derive an approximate analytical expression for the effective viscosity in the limit of weak flows and wide channels, and demonstrate good agreement between theory and numerical calculations.
机译:我们分析了限制在两个无限平行板之间并受压力驱动的自推进细长颗粒的稀悬浮液的有效流变特性。我们使用连续动力学模型来描述系统中颗粒的构型,其中考虑了游泳者引起的扰动流,并使用它来计算在一定范围的通道宽度和流动强度下的悬浮液粘度估算值典型的微流体实验。我们的结果与以前的批量模型相符,特别是表明,在低流速下,活性作用最强,其中推动器倾向于降低悬浮液粘度,而推动器则可以提高悬浮液粘度。在更强的流动中,耗散应力克服了活动的影响,导致粘度增加,随后剪切变稀。还分析了限制和数量密度的影响,我们的结果证实了最近的实验在中等密度的推动器悬浮液上明显过渡到超流动性。我们还推导了在弱流和宽通道的极限内的有效粘度的近似解析表达式,并证明了理论与数值计算之间的良好一致性。

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