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Analytical and simulation studies of driven diffusive system with asymmetric heterogeneous interactions

机译:具有非对称异质相互作用的驱动扩散系统的分析与仿真研究

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摘要

Totally asymmetric simple exclusion process (namely, TASEP) is one of the most vital driven diffusive systems, which depicts stochastic dynamics of self-driven particles unidirectional updating along one-dimensional discrete lattices controlled by hard-core exclusions. Different with pre-existing results, driven diffusive system composed by multiple TASEPs with asymmetric heterogeneous interactions under two-dimensional periodic boundaries is investigated. By using detailed balance principle, particle configurations are extensively studied to obtain universal laws of characteristic order parameters of such stochastic dynamic system. By performing analytical analyses and Monte-Carlo simulations, local densities are found to be monotone increase with global density and spatially homogeneous to site locations. Oppositely, local currents are found to be non-monotonically increasing against global density and proportional to forward rate. Additionally, by calculating different cases of topologies, changing transition rates are found to have greater effects on particle configurations in adjacent subsystems. By intuitively comparing with pre-existing results, the improvement of our work also shows that introducing and considering totally heterogeneous interactions can improve the total current in such multiple TASEPs and optimize the overall transport of such driven-diffusive system. Our research will be helpful to understand microscopic dynamics and non-equilibrium dynamical behaviors of interacting particle systems.
机译:完全不对称的简单排除过程(即TASEP)是最重要的驱动扩散系统之一,它描述了由硬核排除控制的一维离散晶格上自驱动粒子单向更新的随机动力学。与已有结果不同,研究了由二维周期边界下具有不对称异质相互作用的多个TASEP组成的驱动扩散系统。通过使用详细的平衡原理,对粒子的结构进行了广泛的研究,以获得这种随机动力系统的特征阶参数的通用定律。通过进行分析分析和蒙特卡洛模拟,发现局部密度随整体密度单调增加,并且在空间上与站点位置相同。相反,发现局部电流相对于整体密度非单调增加,并且与正向速率成正比。此外,通过计算拓扑的不同情况,发现变化的跃迁速率对相邻子系统中的粒子配置有更大的影响。通过直观地与现有结果进行比较,我们工作的改进还表明,引入和考虑完全异质的相互作用可以改善此类多个TASEP中的总电流,并优化此类驱动扩散系统的总体传输。我们的研究将有助于理解相互作用粒子系统的微观动力学和非平衡动力学行为。

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