论文标题

活性布朗颗粒的惯性系统中的空间速度相关性

Spatial velocity correlations in inertial systems of Active Brownian Particles

论文作者

Caprini, Lorenzo, Marconi, Umberto Marini Bettolo

论文摘要

最近,已经发现,高密度的活性布朗颗粒(APB)系统将其速度组织到相干结构域中,显示速度场中的大空间结构。这种集体行为是自发发生的,即不是由有利于速度比对的任何特定的颗粒室内力引起的。在没有热噪声的情况下,在无法忽略惯性力的过度阻尼政权中研究了这种现象。在这项工作中,我们通过数值模拟和理论分析证明,即使在存在惯性力和热波动的情况下,速度比对也是ABP的强大特性,即使存在。我们还表明,单个无量纲参数,例如在自popelled颗粒描述中通常使用的péclet数字,不足以完全表征大粘度和质量小的质量中的这种现象。实际上,通过空间速度相关的相关长度测量的速度结构域的大小在游泳速度增加时保持恒定,而随着旋转扩散变得更大的速度减小。我们发现,空间速度相关性取决于惯性,但与共同的信念相反,非对称受到质量和反粘度变化的影响。我们得出的结论是,在自propelled系统中,与被动系统的差异,惯性时间的变化(溶剂粘度上的质量)和质量是独立的控制参数。最后,我们强调了空间速度相关性的非热质性质,这些相关性既对溶剂和活性温度都不敏感。

Recently, it has been discovered that systems of Active Brownian particles (APB) at high density organise their velocities into coherent domains showing large spatial structures in the velocity field. Such a collective behavior occurs spontaneously, i.e. is not caused by any specific interparticle force favoring the alignment of the velocities. This phenomenon was investigated in the absence of thermal noise and in the overdamped regime where inertial forces could be neglected. In this work, we demonstrate through numerical simulations and theoretical analysis that the velocity alignment is a robust property of ABP and persists even in the presence of inertial forces and thermal fluctuations. We also show that a single dimensionless parameter, such as the Péclet number customarily employed in the description of self-propelled particles, is not sufficient to fully characterize such a phenomenon neither in the regimes of large viscosity nor small mass. Indeed, the size of the velocity domains, measured through the correlation length of the spatial velocity correlation, remains constant when the swim velocity increases while decreases as the rotational diffusion becomes larger. We find that the spatial velocity correlation depends on the inertia but, contrary to common belief, are non-symmetrically affected by mass and inverse viscosity variations. We conclude that in self-propelled systems, at variance with passive systems, variations of the inertial time (mass over solvent viscosity) and mass act as independent control parameters. Finally, we highlight the non-thermal nature of the spatial velocity correlations that are fairly insensitive both to solvent and active temperatures.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源