论文标题

惯性自行颗粒的弹跳动力学揭示了方向性不对称性

The bouncing dynamics of inertial self-propelled particles reveals directional asymmetry

论文作者

Horvath, Denis, Slabý, Cyril, Tomori, Zoltán, Hovan, Andrej, Miskovsky, Pavol, Bánó, Gregor

论文摘要

这项研究旨在检查实验条件,在这些条件下,周围环境强迫主动颗粒以连续的振荡方式向前和向后移动。实验设计是基于使用振动的自旋转玩具枪,称为己虫,该玩具机器人被放置在狭窄的狭窄通道内,该通道被刚性移动的壁封闭在一端。使用末端壁速度作为控制因素,可以将六角形运动的主要前向模式转向后方模式。我们在实验和理论方面研究了弹跳运动的弹跳运动。理论框架中采用了具有惯性活性颗粒的布朗模型。该模型本身使用脉冲的langevin方程,以模拟速度的突然变化,以模拟六角刺的推进,当时其腿与底板接触时。明显的方向不对称是由腿向后弯曲引起的。我们证明,模拟在回归空间和时间统计特征后,成功地再现了六角运动运动的实验特征,尤其是在考虑方向性不对称时。

This study aims to examine experimental conditions in which active particles are forced by their surroundings to move forward and backward in a continuous oscillatory manner. The experimental design is based on using a vibrating self-propelled toy-robot called hexbug, which is placed inside a narrow channel closed on one end by a rigid moving wall. Using the end-wall velocity as a controlling factor, the main forward mode of the hexbug movement can be turned to mostly rearward mode. We investigate the bouncing hexbug motion on both experimental and theoretical grounds. The Brownian model of active particles with inertia is employed in the theoretical framework. The model itself uses a pulsed Langevin equation in order to simulate abrupt changes in velocity that mimic hexbug propulsion in the moments when its legs make contact with the base plate. Significant directional asymmetry is caused by the legs bending backward. We demonstrate that the simulation successfully reproduces the experimental characteristics of hexbug motion after regressing the spatial and temporal statistical characteristics, especially when directional asymmetry is under consideration.

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