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From collective periodic running states to completely chaotic synchronised states in coupled particle dynamics

机译:从耦合的粒子动力学中的集体周期性运行状态到完全混沌同步状态

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We consider the damped and driven dynamics of two interacting particles evolving in a symmetric and spatially periodic potential. The latter is exerted to a time-periodic modulation of its inclination. Our interest is twofold: First, we deal with the issue of chaotic motion in the higher-dimensional phase space. To this end, a homoclinic Melnikov analysis is utilised assuring the presence of transverse homoclinic orbits and homoclinic bifurcations for weak coupling allowing also for the emergence of hyperchaos. In contrast, we also prove that the time evolution of the two coupled particles attains a completely synchronised (chaotic) state for strong enough coupling between them. The resulting "freezing of dimensionality" rules out the occurrence of hyperchaos. Second, we address coherent collective particle transport provided by regular periodic motion. A subharmonic Melnikov analysis is utilised to investigate persistence of periodic orbits. For directed particle transport mediated by rotating periodic motion, we present exact results regarding the collective character of the running solutions entailing the emergence of a current. We show that coordinated energy exchange between the particles takes place in such a manner that they are enabled to overcome-one particle followed by the other-consecutive barriers of the periodic potential resulting in collective directed motion.
机译:我们考虑了两个相互作用的粒子在对称和空间周期性电势中的阻尼和驱动动力学。后者作用于其倾斜的时间周期调制。我们的兴趣是双重的:首先,我们处理高维相空间中的混沌运动问题。为此,利用同质梅尔尼科夫分析确保横向同质轨道和同质分叉的存在以实现弱耦合,同时也允许出现超混沌现象。相比之下,我们还证明了两个耦合粒子的时间演化达到了完全同步(混沌)状态,从而使它们之间具有足够强的耦合性。产生的“维数冻结”排除了超混沌的发生。第二,我们讨论由规则周期性运动提供的相干集体粒子传输。次谐波梅尔尼科夫分析用于研究周期轨道的持久性。对于由旋转周期运动介导的定向粒子传输,我们给出了有关正在运行的溶液的集体特征(需要出现电流)的精确结果。我们表明,粒子之间的协调的能量交换以这样的方式进行:使它们能够克服一个粒子,然后克服周期性电势的其他连续屏障,从而导致集体定向运动。

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