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Fluid Forces Enhance the Performance of an Aspirant Leader in Self-Organized Living Groups

机译:流体力量增强了自组织生活团体中有抱负的领导者的表现

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摘要

In this paper, the performance of an individual aiming at guiding a self-organized group is numerically investigated. A collective behavioural model is adopted, accounting for the mutual repulsion, attraction and orientation experienced by the individuals. Moreover, these represent a set of solid particles which are supposed to be immersed in a fictitious viscous fluid. In particular, the lattice Boltzmann and Immersed boundary methods are used to predict the fluid dynamics, whereas the effect of the hydrodynamic forces on particles is accounted for by solving the equation of the solid motion through the time discontinuous Galerkin scheme. Numerical simulations are carried out by involving the individuals in a dichotomous process. On the one hand, an aspirant leader (AL) additional individual is added to the system. AL is forced to move along a prescribed direction which intersects the group. On the other hand, these tend to depart from an obstacle represented by a rotating lamina which is placed in the fluid domain. A numerical campaign is carried out by varying the fluid viscosity and, as a consequence, the hydrodynamic field. Moreover, scenarios characterized by different values of the size of the group are investigated. In order to estimate the AL's performance, a proper parameter is introduced, depending on the number of individuals following AL. Present findings show that the sole collective behavioural equations are insufficient to predict the AL's performance, since the motion is drastically affected by the presence of the surrounding fluid. With respect to the existing literature, the proposed numerical model is enriched by accounting for the presence of the encompassing fluid, thus computing the hydrodynamic forces arising when the individuals move.
机译:在本文中,以数值方式研究了旨在指导自组织群体的个人绩效。采用集体行为模型,考虑个人经历的相互排斥,吸引和定向。此外,这些代表一组固体颗粒,应该将其浸入虚拟的粘性流体中。特别是,使用格子Boltzmann方法和浸入式边界方法来预测流体动力学,而流体动力对粒子的影响则是通过时间不连续Galerkin方案求解固体运动方程来解决的。通过使个体参与二分过程来进行数值模拟。一方面,向系统中添加了一个领导者(AL)附加人员。 AL被迫沿着与组相交的指定方向移动。另一方面,这些趋向于偏离由放置在流体域中的旋转薄片所代表的障碍。通过改变流体的粘度和流体动力场来进行数值模拟。此外,研究了以小组规模的不同值为特征的方案。为了评估AL的性能,根据遵循AL的人员数量,引入了适当的参数。目前的发现表明,唯一的集体行为方程式不足以预测AL的性能,因为运动受周围流体的存在影响很大。关于现有文献,通过考虑包围流体的存在来丰富提出的数值模型,从而计算当个体移动时产生的流体动力。

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    Alessandro De Rosis;

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  • 年(卷),期 -1(9),12
  • 年度 -1
  • 页码 e114687
  • 总页数 18
  • 原文格式 PDF
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