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Hydrodynamic Equations for Flocking Models without Velocity Alignment

机译:用于没有速度对准的植绒模型的流体动力学方程

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The spontaneous emergence of collective motion patterns is usually associated with the presence of a velocity alignment mechanism that mediates the interactions among the moving individuals. Despite of this widespread view, it has been shown recently that several flocking behaviors can emerge in the absence of velocity alignment and as a result of short-range, position-based, attractive forces that act inside a vision cone. Here, we derive the corresponding hydrodynamic equations of a microscopic position-based flocking model, reviewing and extending previous reported results. In particular, we show that three distinct macroscopic collective behaviors can be observed: i) the coarsening of aggregates with no orientational order, ii) the emergence of static, elongated nematic bands, and iii) the formation of moving, locally polar structures, which we call worms. The derived hydrodynamic equations indicate that active particles interacting via position-based interactions belong to a distinct class of active systems fundamentally different from other active systems, including velocity-alignment-based flocking systems.
机译:集体运动模式的自发出现通常与旋转速度取向机构的存在相关联,该机构介导移动个体之间的相互作用。尽管存在这一广泛的观点,但最近已经表明了几种植绒行为可以在没有速度对准的情况下出现,并且由于在视觉锥内起作用的短距离,位置,基于的有吸引力的力。这里,我们得出了基于微观位置的植入模型的相应流体动力学方程,审查和扩展了先前的报告结果。特别地,我们表明,可以观察到三种不同的宏观集体行为:i)绝缘粗糙化合物,II)静态,细长的向列带和III的出现,形成了移动,局部极性结构的形成我们称蠕虫。衍生的流体动力学方程表明,通过基于位置的相互作用相互作用的活性颗粒属于与其他有源系统外部不同的活动系统,包括基于速度对准的植绒系统。

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