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Emergence of Inertia in the Low-Reynolds Regime of Self-Diffusiophoretic Motion

Emmy N. Zero,Vincent H. CrespiTop Scholar

PHYSICAL REVIEW E(2024)

Penn State Univ

Cited 1|Views9
Abstract
For isotropic swimming particles driven by self-diffusiophoresis at zero Reynolds number (where particle velocity responds instantaneously to applied force), the diffusive timescale of emitted solute can produce an emergent quasi-inertial behavior. These particles can orbit in a central potential and reorient under second-order dynamics, not the first-order dynamics of classical zero-Reynolds motion. They are described by a simple effective model that embeds their history-dependent behavior as an effective inertia, this being the most primitive expression of memory. The system can be parameterized with dynamic quantities such as particle size and swimming speed, without detailed knowledge of the diffusiophoretic mechanism.
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要点】:本文研究了在零雷诺数下,自扩散输运驱动的各向同性游泳粒子表现出一种准惯性行为,提出了一个包含历史依赖性的有效模型,揭示了粒子运动中的新兴惯性现象。

方法】:作者通过建立一个简单有效模型,将粒子的历史依赖性嵌入为有效惯性,从而模拟和描述了粒子的运动行为。

实验】:论文没有具体描述实验过程,但提出粒子可以在中心势场中轨道运动并在二阶动力学下重新定向,该模型可以通过粒子大小和游泳速度等动态量进行参数化,无需详细了解自扩散输运机制。数据集名称未提及。