Simulating squirmers with smoothed particle dynamics.

IF 2.4 3区 物理与天体物理 Q1 Mathematics
Xinwei Cai, Kuiliang Wang, Gaojin Li, Xin Bian
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引用次数: 0

Abstract

Microswimmers play an important role in shaping the world around us. The squirmer is a simple model of a microswimmer whose cilia oscillations on its spherical surface induce an effective slip velocity to propel itself. The rapid development of computational fluid dynamics methods has markedly enhanced our capacity to study the behavior of squirmers in aqueous environments. Nevertheless, a unified methodology that can fully address the complexity of fluid-solid coupling at multiple scales and interface tracking for multiphase flows remains elusive, posing an outstanding challenge to the field. To this end, we investigate the potential of the smoothed particle dynamics (SPD) method as an alternative approach to simulating squirmers. The Lagrangian nature of the method allows it to effectively address the aforementioned difficulty. By introducing a novel treatment of the boundary condition and assigning appropriate slip velocities to the boundary particles, the SPD squirmer model is able to accurately represent a range of microswimmer types, including pushers, neutral swimmers, and pullers. We systematically validate the steady-state velocity of the squirmer, the resulting flow field, its hydrodynamic interactions with the surrounding environment, and the mutual collision of two squirmers. In the presence of Brownian motion, the model is also able to correctly calculate the velocity and angular velocity autocorrelation functions at the mesoscale. Finally, we simulate a squirmer within a multiphase flow by considering a droplet that encloses a squirmer and imposing a surface tension between the two flow phases. We find that the squirmer within the droplet exhibits different motion types. Since the proposed method is applicable to a wide range of complex scenarios, it has implications for a number of areas, including the design and application of micro and/or nano artificial swimmers, flow manipulation in microfluidic chips, and drug delivery in the biomedical field.

用平滑粒子动力学模拟蠕动。
微型游泳者在塑造我们周围的世界方面发挥着重要作用。它是一个微型游泳者的简单模型,其纤毛在其球形表面上的振荡会产生一个有效的滑动速度来推动自己。计算流体动力学方法的迅速发展大大提高了我们研究水环境中蠕动体行为的能力。然而,一种能够完全解决多尺度流固耦合复杂性和多相流界面跟踪的统一方法仍然难以实现,这对该领域构成了突出的挑战。为此,我们研究了光滑粒子动力学(SPD)方法作为模拟蠕动的替代方法的潜力。该方法的拉格朗日性质允许它有效地解决上述困难。通过引入一种新的边界条件处理方法,并为边界粒子分配适当的滑移速度,SPD蠕动模型能够准确地表示一系列微游动类型,包括推动者、中性游动者和拉动者。我们系统地验证了蠕动器的稳态速度、产生的流场、它与周围环境的流体动力相互作用以及两个蠕动器的相互碰撞。在存在布朗运动的情况下,该模型还能正确地计算中尺度的速度和角速度自相关函数。最后,我们模拟了多相流中的一个蠕动器,通过考虑一个包裹着蠕动器的液滴,并在两相流之间施加表面张力。我们发现液滴内部的蠕动表现出不同的运动类型。由于所提出的方法适用于广泛的复杂场景,因此它对许多领域都有影响,包括微型和/或纳米人工游泳者的设计和应用,微流控芯片中的流动操纵以及生物医学领域的药物输送。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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