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具有惯性延迟和欠阻尼动力学的有源相场晶体系统

Active phase field crystal systems with inertial delay and underdamped dynamics.

作者信息

Arold Dominic, Schmiedeberg Michael

机构信息

Institut für Theoretische Physik I, Friedrich-Alexander-Universität Erlangen-Nürnberg, Staudtstraße 7, 91058, Erlangen, Germany.

出版信息

Eur Phys J E Soft Matter. 2020 Jul 9;43(7):47. doi: 10.1140/epje/i2020-11971-x.

Abstract

Active matter systems often are well approximated as overdamped, meaning that any inertial momentum is immediately dissipated by the environment. On the other hand, especially for macroscopic systems but also for many mesoscopic ones particle mass can become relevant for the dynamics. For such systems we recently proposed an underdamped continuum model which captures translationally inertial dynamics via two contributions. First, convection and second a damping time scale of inertial motion. In this paper, we ask how both of these features influence the collective behavior compared to overdamped dynamics by studying the example of the active phase field crystal model. We first focus on the case of suppressed convection to study the role of the damping time. We quantify that the relaxation process to the steady collective motion state is considerably prolonged with damping time due to the increasing occurrence of transient groups of circularly moving density peaks. Finally, we illustrate the fully underdamped case with convection. Instead of collective motion of density peaks we then find a coexistence of constant high and low density phases reminiscent of motility-induced phase separation.

摘要

活性物质系统通常可以很好地近似为过阻尼系统,这意味着任何惯性动量都会立即被环境耗散。另一方面,特别是对于宏观系统,而且对于许多介观系统而言,粒子质量对于动力学可能变得至关重要。对于此类系统,我们最近提出了一种欠阻尼连续介质模型,该模型通过两种作用来捕捉平移惯性动力学。第一,对流;第二,惯性运动的阻尼时间尺度。在本文中,我们通过研究活性相场晶体模型的例子来探讨与过阻尼动力学相比,这两个特征如何影响集体行为。我们首先关注对流被抑制的情况,以研究阻尼时间的作用。我们定量分析得出,由于圆形移动密度峰的瞬态群出现得越来越频繁,达到稳定集体运动状态的弛豫过程会随着阻尼时间而显著延长。最后,我们阐述了存在对流时的完全欠阻尼情况。此时,我们没有发现密度峰的集体运动,而是发现了恒定的高密度和低密度相共存的现象,这让人联想到运动诱导的相分离。

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